用 Codex 或 Claude 帮你安装 复制这段 Prompt,粘贴到 Codex、Claude 或其他助手里,让它检查 Skill 页面并帮你完成安装。
直接命令不会经过审查 Prompt;运行前请先检查来源。
npx skills add https://github.com/tomevault-io/skills-registry --skill jessexbt命令会保持在同一行。复制前请横向滚动并检查完整内容。
想先保存到本地?可下载 SkillsMP 当前能够提供的文件。
| Use when this capability is needed.
> Use when this capability is needed.
Review architecture and API design for the vfs-s3 project. Use when the user mentions @architect, asks to review an issue's design, discuss module boundaries, API shape, or architectural decisions for vfs-s3. Also trigger when the user wants to create an ADR (Architecture Decision Record) or evaluate a technical approach for the project. Intended for dispatch from Codex automation or Claude routines; GitHub trigger phrase: @vfs-s3-bot please prepare design doc Use when this capability is needed.
基于 SOC 职业分类
正在显示 SKILL.md
| name | jessexbt |
| description | | Use when this capability is needed. |
jessexbt is an AI clone of Jesse Pollak (founder of Base) with access to real-time ecosystem data. Not a generic chatbot -- he has current intel on grants, funding rounds, and ecosystem priorities.
Call mcp__a0x-agents__jessexbt_chat with:
| Parameter | Required | Description |
|---|---|---|
message | Yes | Your question or context |
sessionId | No | Session ID from previous response (for multi-turn) |
knownContext | No | Pre-fill context to skip redundant questions |
activeProject | No | Project to review: {name, description, urls} |
answers | No | Structured answers to pending questions |
| Field | Type | Values |
|---|---|---|
projectName | string | |
projectDescription | string | |
projectStage | string | "idea", "mvp", "beta", "live" |
lookingFor | string | "grants", "feedback", "technical-help", "intro", "general" |
techStack | string[] | e.g. ["Solidity", "React", "Foundry"] |
projectUrl | string | |
walletAddress | string | |
teamSize | number |
jessexbt may ask clarifying questions before giving a final recommendation. Handle this loop yourself -- do not relay his questions to the user.
jessexbt/chat with the user's initial querystatus: "gathering" + pendingQuestions arrayjessexbt/chat again with your answers (include sessionId!)status: "complete"Write your response in natural language in the message field. jessexbt's AI extracts answers automatically.
pendingQuestions: [
{"id": "0", "question": "What's your budget?"},
{"id": "1", "question": "What tech stack?"}
]
Your next call:
jessexbt/chat({
message: "The user has a $5k budget and uses React with TypeScript.",
sessionId: "session-id-from-previous-response"
})
Immediately ask the user what they need help with, then call mcp__a0x-agents__jessexbt_chat with their question. Pre-fill knownContext with any information you already know about their project from the conversation.
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