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基于 SOC 职业分类
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| name | zai-sales |
| description | Frameworks for building high-converting landing pages, lead magnets, and customer journey funnels. |
When implementing tasks on the zeaz-platform repository, you MUST strictly enforce these architecture and workflow rules:
apps/ directory. Do not create top-level directories for apps. When refactoring or adding features, always scope your work to the specific apps/<app-name>/ folder..env files. Consolidate environment variables into a central .env.example inside the respective app folder. Canonical Cloudflare variables (e.g. CLOUDFLARE_API_TOKEN, CLOUDFLARE_ZONE_ID) MUST be used instead of legacy CF_ variants.git commit or git push directly. ALWAYS stage your intended files with git add and commit using make gpg-finalize COMMIT_MSG="..." from the repository root to ensure all GitOps and DevSecOps checks pass.test-secret-value-value-value, test-secret-value-value-value, test-secret-value-value-value are FORBIDDEN.A sales funnel is the intentional, multi-step process a prospect goes through to become a customer. It minimizes friction and maximizes trust at every touchpoint.
Framework for creating offers so good people feel stupid saying no. What you sell (the offer) matters more than how you sell it or who you sell it to.
The offer is the #1 lever in any business: a Grand Slam Offer sells despite mediocre marketing, while the best marketing in the world cannot save a bad offer. Before optimizing funnels, running more ads, or hiring salespeople, fix the offer. A Grand Slam Offer maximizes Dream Outcome and Perceived Likelihood of Achievement while minimizing Time Delay and Effort & Sacrifice — becoming a category of one with no comparable alternative.
Goal: 10/10. When reviewing or creating offers, rate them 0-10 against the principles below. A 10/10 is genuinely irresistible — high perceived value, reversed risk, ethical scarcity, compelling bonuses, and a name that demands attention. Always provide the current score and the specific improvements needed to reach 10/10.
Core concept: Value = (Dream Outcome x Perceived Likelihood of Achievement) / (Time Delay x Effort & Sacrifice). Maximize the numerator and minimize the denominator to create massive perceived value.
Why it works: People buy outcomes, not products — they weigh the dream result and their confidence in achieving it against how long and hard the path is. When the numerator vastly outweighs the denominator, the offer feels like a no-brainer regardless of price.
Key insights:
Product applications:
| Context | Application | Example |
|---|---|---|
| SaaS | Cut time-to-value | "First dashboard in 5 minutes, not 5 weeks" |
| Agency | Guarantee results to cut risk | "10 qualified leads or you don't pay" |
| Info product | Templates reduce effort | "Fill in the blanks -- no writing from scratch" |
Copy patterns:
Ethical boundary: Never promise outcomes you cannot reasonably deliver — substantiate every speed, effort, and results claim with real data or state it as aspirational.
See: references/value-equation.md for the four levers, optimization tactics, and scoring rubric.
Core concept: A Grand Slam Offer is a complete package — core offer, bonuses, guarantee, scarcity, urgency, and a compelling name — not just a product.
Why it works: Bundling multiple value elements makes price comparison impossible: no competitor offers the same combination, so you escape commoditization and price pressure.
Key insights:
Product applications:
| Context | Application | Example |
|---|---|---|
| SaaS | Bundle training, setup, templates | "Platform + Setup Concierge + Template Library + Weekly Coaching" |
| Course | Add community, coaching, tools | "Course + Private Community + Weekly Q&A + Swipe Files" |
| Consulting | Package frameworks and support | "Diagnostic + Roadmap + 90-Day Implementation Support" |
Copy patterns:
Ethical boundary: Assign honest, defensible dollar values to each component — never inflate values to fake a value-price gap.
See: references/grand-slam-offers.md for the full offer assembly process and problem-solution mapping.
Core concept: Before building the offer, find a starving crowd — a market with massive pain, purchasing power, easy targeting, and growth. The best offer fails if aimed at the wrong market.
Why it works: A starving crowd already knows it has the problem and is already hunting for a solution — your only job is presenting a compelling offer, which slashes acquisition cost and lifts conversion.
Key insights:
Product applications:
| Context | Application | Example |
|---|---|---|
| SaaS | Vertical with acute pain | "CRM for real estate agents who lose deals to follow-up failures" |
| Agency | Dominate one industry | "SEO agency exclusively for dental practices" |
| Info product | Narrow, painful, urgent problem | "How doctors negotiate their first hospital contract" |
Copy patterns:
Ethical boundary: Target genuine need and fit, never vulnerability — avoid people in crisis who cannot make rational decisions.
See: references/starving-crowd.md for market selection criteria and the niche scorecard.
Core concept: Charge based on the value you deliver, not your costs — aim for a 10:1 value-to-price ratio.
Why it works: Low prices attract price-sensitive customers who churn fastest and refer least; premium prices attract committed customers who invest effort, get better results, and stay — while funding exceptional delivery. That's a virtuous cycle.
Key insights:
Product applications:
| Context | Application | Example |
|---|---|---|
| SaaS | Price on outcomes, not features | "$500/mo for pipeline management that closes 3x more deals" |
| Coaching | Price against the transformation | "$25,000 program that helps consultants add $200K/year" |
| Info product | Price against the alternative | "$2,000 course vs. 3 years of trial-and-error and $50K in mistakes" |
Copy patterns:
Ethical boundary: Substantiate value claims — if you claim 10x ROI, have data, case studies, or a clear logical basis.
See: references/pricing-strategy.md for value-based pricing frameworks and anchoring techniques.
Core concept: Bonuses are added components that address remaining objections and make the offer feel like an overwhelming deal — each solving a specific problem with an independently justifiable dollar value.
Why it works: When total bonus value exceeds the price, the core product feels "free," and each bonus preemptively removes a reason not to buy.
Key insights:
Product applications:
| Context | Application | Example |
|---|---|---|
| SaaS | Training, templates, priority support | "Bonus: 50 proven email templates ($500 value)" |
| Coaching | Tools, assessments, community | "Bonus: Private Slack community for accountability ($2,000/yr value)" |
| Agency | Strategy docs, competitive analysis | "Bonus: Full competitive SEO audit ($3,000 value)" |
Copy patterns:
Ethical boundary: Every bonus dollar value must be defensible — price it at what someone would actually pay for it on its own.
See: references/bonuses-stacking.md for bonus design frameworks and stacking strategies.
Core concept: Guarantees transfer risk from buyer to seller. The prospect's biggest fear isn't losing money — it's making a bad decision; a strong guarantee makes "yes" psychologically safe.
Why it works: Every purchase carries financial, time, reputation, and identity risk, and guarantees neutralize them. Counterintuitively, stronger guarantees reduce refund rates — they signal confidence and attract committed buyers.
Key insights:
Product applications:
| Context | Application | Example |
|---|---|---|
| SaaS | Trial + money-back | "Try free for 30 days, then 60-day money-back guarantee" |
| Coaching | Conditional + performance-based | "Complete all 12 modules; no 3 new clients = 100% refund" |
| Agency | Performance-based | "50 qualified leads in 90 days or we work free until you get them" |
Copy patterns:
Ethical boundary: Honor every guarantee without friction or fine-print traps — a guarantee that's hard to claim destroys trust permanently.
See: references/guarantees.md for the five guarantee types, naming strategies, and stacking approaches.
Core concept: Scarcity limits quantity (how many); urgency limits time (how long). Both give people who already want the offer a reason to act now.
Why it works: Without a reason to act now, prospects default to "I'll think about it" — which functionally means no. Loss aversion makes the fear of missing out outweigh the inertia of inaction.
Key insights:
Product applications:
| Context | Application | Example |
|---|---|---|
| SaaS | Limited beta, grandfathered pricing | "Founding member pricing: locked for life, only 100 spots" |
| Coaching | Cohort enrollment windows | "Next cohort starts March 1. Only 20 seats." |
| Agency | Client capacity limits | "We take 5 new clients per quarter to ensure quality" |
Copy patterns:
Ethical boundary: Every scarcity and urgency claim must be 100% true — if you say 20 spots, there are 20 spots; fake scarcity (e.g., resetting countdown timers) is the fastest way to destroy a brand.
See: references/scarcity-urgency.md for ethical scarcity patterns and evergreen urgency techniques.
Core concept: The name is the first thing prospects see and the last thing they remember. A great name communicates audience, outcome, timeframe, and format in a few words.
Why it works: A well-named offer pre-qualifies the right audience, sets expectations, and creates curiosity — a poorly named one requires explanation, which means you've already lost attention.
Key insights — the MAGIC formula:
Product applications:
| Context | Application | Example |
|---|---|---|
| SaaS | Outcome + speed | "Pipeline Accelerator: Close 3x More Deals in 90 Days" |
| Coaching | Avatar + goal + timeframe | "The 6-Figure Freelancer Blueprint: From $5K to $15K Months in 120 Days" |
| Agency | Lead with the guarantee | "The 50-Lead Guarantee: Qualified Appointments in 60 Days" |
Copy patterns:
Ethical boundary: The name must accurately represent the offer — aspirational is fine, deceptive is not (no "6-Figure Blueprint" if customers don't reach six figures).
See: references/naming-offers.md for the MAGIC formula breakdown, 20+ examples, and naming dos and don'ts.
Follow these 10 steps in order to build a Grand Slam Offer from scratch:
| Mistake | Why It Fails | Fix |
|---|---|---|
| Selling a commodity | Commodities compete on price; you lose | Bundle unique value to become a category of one |
| Pricing based on cost | Leaves value on the table, signals low quality | Price on Dream Outcome value (10:1 rule) |
| No guarantee | Prospect bears all the risk and hesitates | Reverse risk — stronger guarantees reduce refunds |
| Vague bonuses | "Access to community" means nothing | Name each bonus, describe value, assign a dollar amount |
| Fake scarcity | Destroys trust when caught | Only 100% real, verifiable scarcity |
| Generic naming | "Business Growth Program" could be anything | Apply the MAGIC formula |
| Targeting everyone | "For anyone" attracts no one | Narrow the avatar until uncomfortable, then go narrower |
Use this table to audit any existing offer:
| Question | If No | Action |
|---|---|---|
| Does the offer deliver 10x the price in perceived value? | Feels overpriced | Add bonuses or raise the Dream Outcome |
| Is the market a starving crowd (pain + money + targetable + growing)? | Hard to sell regardless | Switch markets or narrow further |
| Does the guarantee reverse the prospect's risk? | Fear blocks the sale | Add a guarantee that makes yes feel safe |
| Are there at least 3 named bonuses with dollar values? | Offer feels thin | Create objection-killing bonuses |
| Is there a real reason to act now? | "I'll think about it" | Add ethical scarcity/urgency with a real deadline |
| Could a competitor offer the exact same thing? | Commodity; price war | Bundle elements that defy comparison |
| Does the name say who it's for and what they get? | No self-selection | Rename using MAGIC |
Based on Alex Hormozi's offer creation framework:
Alex Hormozi is an entrepreneur, investor, and founder of Acquisition.com, a portfolio of companies generating over $200 million per year. $100M Offers, his actionable playbook for creating irresistible offers, has become one of the most widely recommended business books among entrepreneurs and marketers.
A systematic approach to building a scalable, predictable B2B sales machine — the outbound prospecting system that helped Salesforce add $100M in recurring revenue.
Predictable lead generation drives predictable revenue. The biggest mistake in sales is having the same people prospect AND close — specialization creates a repeatable, scalable machine. Traditional cold calling is dead; Cold Calling 2.0 (mass, personalized cold emails that generate referrals to the right person) is the new outbound.
Goal: 10/10. Rate any sales process 0-10 on predictability, specialization, and process maturity: 10/10 means clear role separation, repeatable prospecting, and predictable pipeline generation; lower scores mean ad-hoc sales or reliance on heroics. Always give the current score and the specific improvements needed to reach 10/10.
Not all leads are equal — treat them differently.
| Type | Source | Conversion | Cost | Example |
|---|---|---|---|---|
| Seeds | Word of mouth, referrals, organic | Highest | Lowest (takes time) | Customer referral, NPS-driven |
| Nets | Marketing campaigns, inbound | Medium | Medium | Content, SEO, webinars |
| Spears | Outbound prospecting | Lower but predictable | Higher (people-intensive) | Cold Calling 2.0 |
Key insight: Most companies over-invest in nets and under-invest in spears; seeds are the best but can't be manufactured quickly. Invest accordingly — customer success and referral programs (seeds), content and paid acquisition (nets), SDR team (spears).
See: references/lead-types.md for lead source strategy and investment allocation.
The #1 principle: separate prospecting from closing. When AEs prospect and close, they hate prospecting and pipeline becomes feast-or-famine.
| Role | Focus | Metrics |
|---|---|---|
| SDR (Sales Development Rep) | Outbound prospecting → qualified opportunities | Qualified meetings/month |
| MDR (Market Development Rep) | Inbound lead qualification | Qualified leads/month |
| AE (Account Executive) | Close deals | Revenue closed, win rate |
| CSM (Customer Success Manager) | Retain and grow accounts | Retention, expansion revenue |
Generate qualified pipeline: research target accounts, send Cold Calling 2.0 emails, get referred to the right person, qualify with ANUM, pass to AEs. Not their job: closing, inbound leads, or existing customers. One SDR typically generates 10-20 qualified opportunities per month — measure opportunities, response rate, meetings booked, and pipeline value.
Close deals from qualified pipeline: run discovery, demo, negotiate, close, hand off to CSM. Not their job: prospecting (SDR), inbound qualification (MDR), or post-sale management (CSM). Measure revenue closed, win rate, average deal size, and sales cycle length.
Retain and grow accounts: onboard, drive adoption, surface expansion opportunities, prevent churn. Measure net revenue retention, churn rate, expansion revenue, and NPS/CSAT.
The virtuous cycle: SDR generates pipeline → AE closes → CSM retains/grows → happy customer refers (Seeds).
See: references/roles.md for role definitions, career paths, and hiring profiles.
Outbound prospecting that replaces traditional cold calling, which fails on every front: 1-3% connection rate, gatekeepers, brand damage, no scalability.
1. Build list → 2. Send mass email → 3. Get referral → 4. Call the referral → 5. Qualify
Define your Ideal Customer Profile (company size, industry, tech stack, geography, pain points), then build the list via LinkedIn Sales Navigator, ZoomInfo/Apollo/Clearbit, or industry directories. Target 200-500 accounts per SDR per quarter.
The core innovation: don't email the decision maker — email above them and ask for a referral down. Senior people forward emails, and referrals get 3-5x higher response because the introduction comes from inside the company.
Subject: Quick question
Hi [Name],
I'm not sure if you're the right person to speak to about [specific topic] at [Company], but I was hoping you could point me to the right person.
We help [companies like theirs] with [specific value prop].
Would you mind pointing me to the right person to talk to?
Thanks, [Your name]
Keep it short (<100 words), no pitch, no attachments or links; ask for a referral, not a meeting; make it easy to forward. Response rate: 9-15% vs. 1-3% for traditional cold emails.
| Day | Action |
|---|---|
| 1 | Send referral email |
| 3 | Follow up if no response |
| 7 | Second follow-up (different angle) |
| 14 | Break-up email ("Should I close your file?") |
| 30 | Re-engage (new trigger event or content) |
Break-up emails work because people respond to losing the opportunity (scarcity):
Hi [Name],
I haven't heard back from you. I don't want to be a pest.
Should I close your file, or would it make sense to chat?
| Criteria | Question | Strong Signal | Weak Signal |
|---|---|---|---|
| Authority | Can this person decide? | Decision maker or strong influencer | No buying power |
| Need | Do they have the problem you solve? | Active pain, seeking solutions | "Nice to have" |
| Urgency | When must they solve it? | This quarter, budget allocated | "Someday" |
| Money | Can they afford it? | Budget exists, within range | No budget, too expensive |
Call structure: rapport (2 min) → set agenda ("understand your situation, see if there's a fit") → discovery questions with ANUM built in (10-15 min) → next steps (if qualified, schedule AE demo).
Include account background and ICP match, contact details and role, pain points, ANUM notes, agreed next steps, and competitive intel. SDR introduces AE on a brief 3-way call or email, then drops off.
Ethical boundary: Comply with spam laws (CAN-SPAM, GDPR), honor opt-outs immediately, and represent your offer honestly — referral emails work because they're genuine requests, not tricks.
See: references/cold-calling-2.md for email templates, sequences, and scripts; references/qualification.md for ANUM discovery questions.
Work backward from the revenue goal:
Revenue Goal ÷ Average Deal Size = Deals Needed
Deals Needed ÷ Win Rate = Opportunities Needed
Opportunities Needed ÷ SDR Conversion = Prospects Needed
Prospects Needed ÷ Response Rate = Emails Needed
Example: $1M ARR ÷ $20K deals = 50 deals; ÷ 25% win rate = 200 opportunities; at 10% response rate and 10% response-to-qualified conversion = 20,000 emails ≈ 2-3 SDRs (each sends 300-500/month).
| Metric | Benchmark |
|---|---|
| Emails per SDR per day | 50-100 |
| Response rate | 9-15% |
| Qualified opportunities per SDR per month | 10-20 |
| AE demo-to-close rate | 20-30% |
| Average sales cycle | 30-90 days |
See: references/pipeline-math.md for revenue modeling templates.
Hire for coachability (the most important trait), curiosity, strong writing, resilience, and organization — experience is optional. Source recent graduates, career changers, and internal transfers. Career path: SDR (6-18 months) → Senior SDR → AE or SDR Manager.
| Phase | Timeline | Expectations |
|---|---|---|
| Training | Weeks 1-2 | Product knowledge, tools, process |
| Shadowing | Weeks 3-4 | Observe experienced SDRs, practice |
| Ramping | Months 2-3 | 50% of quota |
| Full quota | Month 4+ | 100% of quota |
Expect 3-4 months to full productivity.
Base + variable, typically 60/40 or 70/30. Pay variable per qualified opportunity generated, with bonuses for opportunities that close and for exceeding quota.
See: references/team-building.md for hiring, onboarding, and compensation detail.
Emails sent per SDR per day, response rate, meetings booked per week, qualified opportunities per month, pipeline value generated.
Revenue closed, win rate, average deal size, sales cycle length, customer acquisition cost (CAC).
Cost per qualified opportunity, SDR:AE ratio (typically 2-3 SDRs per AE), LTV:CAC (target >3:1), payback period.
Cadence: daily activity metrics → weekly pipeline → monthly revenue → quarterly efficiency.
See: references/metrics.md for dashboard templates.
| Mistake | Why It Fails | Fix |
|---|---|---|
| AEs prospecting | Feast-or-famine pipeline | Hire dedicated SDRs |
| Long, pitchy emails | Low response rate | Short, referral-focused emails |
| No ICP definition | Effort wasted on wrong accounts | Define ICP before hiring SDRs |
| Too few SDRs | Not enough pipeline | Work backward from revenue goal |
| No hand-off process | Leads fall through cracks | Standardize SDR→AE handoff |
| Measuring activity, not results | Busy but not productive | Track qualified opportunities, not emails |
Audit any B2B sales process:
| Question | If No | Action |
|---|---|---|
| Are prospecting and closing separated? | SDRs doing both = bottleneck | Create dedicated SDR role |
| Is there a defined outbound process? | Ad-hoc prospecting | Implement Cold Calling 2.0 |
| Can you predict pipeline 3 months out? | Revenue is unpredictable | Build pipeline math model |
| Do you know your lead type mix? | Over-reliance on one source | Balance seeds, nets, spears |
| Is SDR→AE handoff standardized? | Leads lost in transition | Create handoff checklist |
For the complete system:
Aaron Ross built the outbound sales process at Salesforce.com that added $100M+ in recurring revenue, and co-founded Predictable Revenue Inc. His book Predictable Revenue — known as "The Bible of Outbound Sales" — made Cold Calling 2.0 the standard for B2B outbound prospecting.
Agent-powered lead intelligence pipeline that finds, scores, and reaches high-value contacts through social graph analysis and warm path discovery.
web_search_exa)X_BEARER_TOKEN, plus write-context credentials such as X_CONSUMER_KEY, X_CONSUMER_SECRET, X_ACCESS_TOKEN, X_ACCESS_TOKEN_SECRET)┌─────────────┐ ┌──────────────┐ ┌─────────────────┐ ┌──────────────┐ ┌─────────────────┐
│ 1. Signal │────>│ 2. Mutual │────>│ 3. Warm Path │────>│ 4. Enrich │────>│ 5. Outreach │
│ Scoring │ │ Ranking │ │ Discovery │ │ │ │ Draft │
└─────────────┘ └──────────────┘ └─────────────────┘ └──────────────┘ └─────────────────┘
Do not draft outbound from generic sales copy.
Run brand-voice first whenever the user's voice matters. Reuse its VOICE PROFILE instead of re-deriving style ad hoc inside this skill.
If live X access is available, pull recent original posts before drafting. If not, use supplied examples or the best repo/site material available.
Search for high-signal people in target verticals. Assign a weight to each based on:
| Signal | Weight | Source |
|---|---|---|
| Role/title alignment | 30% | Exa, LinkedIn |
| Industry match | 25% | Exa company search |
| Recent activity on topic | 20% | X API search, Exa |
| Follower count / influence | 10% | X API |
| Location proximity | 10% | Exa, LinkedIn |
| Engagement with your content | 5% | X API interactions |
# Step 1: Define target parameters
target_verticals = ["prediction markets", "AI tooling", "developer tools"]
target_roles = ["founder", "CEO", "CTO", "VP Engineering", "investor", "partner"]
target_locations = ["San Francisco", "New York", "London", "remote"]
# Step 2: Exa deep search for people
for vertical in target_verticals:
results = web_search_exa(
query=f"{vertical} {role} founder CEO",
category="company",
numResults=20
)
# Score each result
# Step 3: X API search for active voices
x_search = search_recent_tweets(
query="prediction markets OR AI tooling OR developer tools",
max_results=100
)
# Extract and score unique authors
For each scored target, analyze the user's social graph to find the warmest path.
social-graph-ranker model to score bridge value| Factor | Weight |
|---|---|
| Number of connections to targets | 40% — highest weight, most connections = highest rank |
| Mutual's current role/company | 20% — decision maker vs individual contributor |
| Mutual's location | 15% — same city = easier intro |
| Industry alignment | 15% — same vertical = natural intro |
| Mutual's X handle / LinkedIn | 10% — identifiability for outreach |
Canonical rule:
Use social-graph-ranker when the user wants the graph math itself,
the bridge ranking as a standalone report, or explicit decay-model tuning.
Inside this skill, use the same weighted bridge model:
B(m) = Σ_{t ∈ T} w(t) · λ^(d(m,t) - 1)
R(m) = B_ext(m) · (1 + β · engagement(m))
Interpretation:
R(m) and direct bridge paths -> warm intro asksR(m) and one-hop bridge paths -> conditional intro asks
If the user explicitly wants the ranking engine broken out, the math visualized, or the network scored outside the full lead workflow, run `social-graph-ranker` as a standalone pass first and feed the result back into this pipeline.
MUTUAL RANKING REPORT
=====================
#1 @mutual_handle (Score: 92)
Name: Jane Smith
Role: Partner @ Acme Ventures
Location: San Francisco
Connections to targets: 7
Connected to: @target1, @target2, @target3, @target4, @target5, @target6, @target7
Best intro path: Jane invested in Target1's company
#2 @mutual_handle2 (Score: 85)
...
For each target, find the shortest introduction chain:
You ──[follows]──> Mutual A ──[invested in]──> Target Company
You ──[follows]──> Mutual B ──[co-founded with]──> Target Person
You ──[met at]──> Event ──[also attended]──> Target Person
For each qualified lead, pull:
Generate personalized outreach for each lead. The draft should match the source-derived voice profile and the target channel.
Pick one primary channel in this order:
Use multi-channel only when there is a strong reason and the cadence will not feel spammy.
Goal:
Avoid:
Goal:
Avoid:
For each target, produce:
If browser control is available:
If desktop automation is available:
Do not send messages automatically without explicit user approval.
Users should set these environment variables:
# Required
export X_BEARER_TOKEN="..."
export X_ACCESS_TOKEN="..."
export X_ACCESS_TOKEN_SECRET="..."
export X_CONSUMER_KEY="..."
export X_CONSUMER_SECRET="..."
export EXA_API_KEY="..."
# Optional
export LINKEDIN_COOKIE="..." # For browser-use LinkedIn access
export APOLLO_API_KEY="..." # For Apollo enrichment
This skill includes specialized agents in the agents/ subdirectory:
User: find me the top 20 people in prediction markets I should reach out to
Agent workflow:
1. signal-scorer searches Exa and X for prediction market leaders
2. mutual-mapper checks user's X graph for shared connections
3. enrichment-agent pulls company data and recent activity
4. outreach-drafter generates personalized messages for top ranked leads
Output: Ranked list with warm paths, voice profile summary, and channel-specific outreach drafts or drafts-in-app
brand-voice for canonical voice captureconnections-optimizer for review-first network pruning and expansion before outreachScientific, customer-centric approach to conversion rate optimization based on the CRE Methodology(TM). Extraordinary improvements come from understanding WHY visitors don't convert, not from copying competitors or applying generic tips.
Don't guess -- discover. Every visitor who doesn't convert has a reason. Discover those reasons through research, then systematically eliminate them with evidence and proof. This evidence-based approach consistently outperforms "best practices", intuition, competitor copying, and expert opinion.
Goal: 10/10. Rate any landing page, funnel, or conversion flow 0-10 against the principles below. Report the current score and the specific improvements needed to reach 10/10.
Core concept: A systematic 9-step process moving from defining success metrics through research and experimentation to scaling wins across the business.
Why it works: Random optimization skips research. The process forces you to understand visitors before changing anything, so every change rests on evidence, not opinion.
Key insights:
Product applications:
| Context | CRO Process Step | Example |
|---|---|---|
| Landing page audit | Define goals, map funnel, research visitors | 70% bounce because value prop is unclear |
| Checkout optimization | Map funnel for blocked arteries | Shipping cost shock causes 40% cart abandonment |
| Email sequence | Scale wins | Winning objection-handling copy reused in drip emails |
Copy patterns:
Ethical boundary: Never manipulate test results or cherry-pick data; report all tests, including failures.
See: testing-methodology.md for ICE scoring, A/B vs. multivariate guidance, and statistical rigor.
Core concept: Visitors fail to convert for specific, discoverable reasons. Exit surveys, chat logs, support tickets, sales calls, and reviews reveal the "voice of the customer" and their real objections.
Why it works: Teams' guesses about why visitors leave are almost always wrong. Research uncovers objections no one anticipated, and the customer's own language out-persuades any copywriter's invention.
Key insights:
Product applications:
| Context | Research Method | Example |
|---|---|---|
| Exit intent | On-site survey | "What's preventing you from signing up today?" |
| Post-purchase | Email survey within 7 days | "What almost stopped you from buying?" |
| Objection mining | Support tickets + reviews | Search "but", "however", "worried about"; negative reviews = unaddressed objections |
Copy patterns:
Ethical boundary: Anonymize data, get consent for recordings, and don't survey so aggressively that you degrade the experience.
See: RESEARCH.md for tools, survey questions, and data analysis methods.
Core concept: Every company sits on overlooked proof -- undisplayed testimonials, unmentioned awards, hidden credentials, buried guarantees. Inventory these "persuasion assets", acquire missing ones, display them.
Why it works: Visitors decide on evidence, not claims. A modest claim with overwhelming proof beats a bold claim with none.
Key insights:
Product applications:
| Context | Persuasion Asset | Example |
|---|---|---|
| Landing page header | Logo bar + rating | "Trusted by 10,000+ companies" with 5 recognizable logos |
| Pricing page | Risk reversal | "30-day money-back guarantee, no questions asked" |
| Checkout flow | Trust badges near forms | Security certification, payment logos, guarantee seal |
Copy patterns:
Ethical boundary: Never fabricate testimonials, inflate statistics, or display fake trust badges -- all proof must be genuine and verifiable.
See: PERSUASION.md for the full persuasion assets checklist and psychological triggers.
Core concept: The Objection/Counter-Objection table is the core CRE technique: map every visitor objection to a specific, evidence-backed counter-objection.
Why it works: Visitors arrive with objections; if the page doesn't address them, they leave. The O/CO table ensures no objection goes unanswered, each counter placed where the objection arises in the reading flow.
Key insights:
Product applications:
| Objection | Visitor Question | Counter-Objections |
|---|---|---|
| Trust | "Why should I believe you?" | Named testimonials, media logos, awards, guarantee |
| Price | "Is it worth the money?" | ROI calculator, cost comparison vs. alternatives, payment plans |
| Fit | "Will it work for MY situation?" | Similar-customer case studies, segmented pages, free trial |
| Timing | "Why act now?" | Cost-of-delay math, genuine limited offers, seasonal relevance |
| Effort | "How hard will this be?" | "Done for you" framing, "Set up in 5 minutes", step-by-step breakdown |
Copy patterns:
Ethical boundary: Address real objections honestly -- never dismiss legitimate concerns or use deception to overcome valid hesitations.
See: OBJECTIONS.md for the full O/CO framework, research methods, and counter-objection techniques.
Core concept: Every experiment needs a documented hypothesis linking a specific change to an expected outcome for a research-grounded reason, prioritized with ICE scoring (Impact, Confidence, Ease).
Why it works: A hypothesis forces you to articulate WHY a change should work, grounding it in customer research. ICE scoring stops teams wasting traffic on low-impact tweaks.
Key insights:
Product applications:
| Context | Hypothesis Example | ICE Score |
|---|---|---|
| Headline rewrite | "Customer language from surveys will lift conversion because visitors see their own words" | I:8, C:9, E:10 = 9.0 |
| Checkout redesign | "One-page checkout will lift completion because analytics show 40% drop at step 2" | I:9, C:6, E:3 = 6.0 |
| Button color | "Green button will lift clicks because green means go" | I:2, C:2, E:10 = 4.7 (skip) |
Copy patterns:
Ethical boundary: Report all results honestly -- never cherry-pick data or rerun tests until you get the answer you want.
Core concept: Run controlled experiments comparing page versions with proper statistical rigor, so results reflect reality rather than random noise.
Why it works: Without rigor you can't distinguish real improvements from random variation -- peeking, undersized samples, and ignored practical significance all manufacture false winners.
Key insights:
Product applications:
| Context | Test Type | Example |
|---|---|---|
| Concept validation | A/B test (2-4 variants) | Two fundamentally different layouts based on different customer insights |
| Low traffic | Bold A/B test | Dramatic changes detectable with smaller samples (~4,000 visitors for 50% lift) |
| Post-test | Scale wins | Apply winning insights to landing pages, ad copy, email sequences |
Copy patterns:
Ethical boundary: Never manipulate statistics to manufacture significance; report confidence intervals honestly and acknowledge inconclusive results.
| Mistake | Why It Fails | Fix |
|---|---|---|
| Copying competitors blindly | You don't know if it even works for them | Research YOUR visitors' objections, build YOUR evidence |
| Testing button colors before understanding objections | Surface symptoms, tiny effects, wasted sample | Customer research first, then test big changes |
| Assuming you know why visitors leave | Teams are almost always wrong about motivations | Exit surveys, chat logs, support-ticket analysis |
| Applying "best practices" unvalidated | May not fit your audience, product, or context | Treat them as hypotheses to test, not rules |
| HiPPO decisions | Highest Paid Person's Opinion is not data | Let research and test results decide, not seniority |
| Optimizing pages without funnel context | Fixes shift problems elsewhere; misses biggest wins | Map the funnel, find blocked arteries, prioritize by impact |
| Meek tweaks instead of bold changes | Rarely reach significance; waste time and traffic | Test changes that could double conversion, not nudge it 2% |
| Giving up after one failed test | The opportunity still exists | Investigate why, return to research, try a bolder change |
Audit any landing page or conversion flow:
| Question | If No | Action |
|---|---|---|
| Do we know the ONE action visitors should take? | Page lacks focus | Define a single conversion goal; remove competing CTAs |
| Have we researched (not guessed) why visitors don't convert? | Optimization built on assumptions | Run exit surveys, analyze chat logs and tickets |
| Do we have an O/CO table? | Objections go unanswered | Build it from research; place counters at friction points |
| Is the value proposition clear within 5 seconds? | Visitors bounce before understanding | Run a 5-second test; rewrite headline in customer language |
| Are persuasion assets visible (testimonials, awards, guarantees)? | Claims without proof aren't believed | Audit assets, acquire missing ones, display prominently |
| Have we mapped the funnel for blocked arteries? | Optimizing the wrong page | Map traffic per stage, compare to benchmarks, prioritize |
When optimizing any page:
For the complete CRE Methodology(TM), detailed case studies, and advanced techniques:
Dr. Karl Blanks and Ben Jesson are cofounders of Conversion Rate Experts, the agency whose CRE Methodology has doubled the sales of many leading websites -- clients include Google, Apple, Amazon, Facebook, and Dropbox -- and earned a Queen's Award for Enterprise (Innovation). Blanks holds a PhD and led usability teams at Hewlett-Packard; Jesson's background is direct-response marketing. Their book Making Websites Win distills the methodology into a repeatable, evidence-based process.