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plan
Plan mode: write an actionable markdown plan to .kilo/plans/, no execution. Bite-sized tasks, exact paths, complete code.
Codex 또는 Claude로 설치 이 Prompt를 복사해 Codex, Claude 또는 다른 어시스턴트에 붙여 넣으면 Skill 페이지를 검토하고 설치를 진행할 수 있습니다.
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Plan mode: write an actionable markdown plan to .kilo/plans/, no execution. Bite-sized tasks, exact paths, complete code.
Codex 또는 Claude로 설치 이 Prompt를 복사해 Codex, Claude 또는 다른 어시스턴트에 붙여 넣으면 Skill 페이지를 검토하고 설치를 진행할 수 있습니다.
SOC 직업 분류 기준
| name | plan |
| description | Plan mode: write an actionable markdown plan to .kilo/plans/, no execution. Bite-sized tasks, exact paths, complete code. |
Use this skill when the user wants a plan instead of execution.
For this turn, you are planning only.
.kilo/plans/.Write a markdown plan that is concrete and actionable.
Include, when relevant:
If the task is code-related, include exact file paths, likely test targets, and verification steps.
Save the plan with edit under:
.kilo/plans/YYYY-MM-DD_HHMMSS-<slug>.mdTreat that as relative to the active working directory / backend workspace. Kilo file tools are backend-aware, so using this relative path keeps the plan with the workspace on local, docker, ssh, modal, and daytona backends.
If the runtime provides a specific target path, use that exact path.
If not, create a sensible timestamped filename yourself under .kilo/plans/.
/plan, infer the task from the current conversation context.The rest of this skill is the craft of authoring a good implementation plan — the content that goes inside the markdown file above.
Write comprehensive implementation plans assuming the implementer has zero context for the codebase and questionable taste. Document everything they need: which files to touch, complete code, testing commands, docs to check, how to verify. Give them bite-sized tasks. DRY. YAGNI. TDD. Frequent commits.
Assume the implementer is a skilled developer but knows almost nothing about the toolset or problem domain. Assume they don't know good test design very well.
Core principle: A good plan makes implementation obvious. If someone has to guess, the plan is incomplete.
Always use before:
Don't skip when:
Each task = 2-5 minutes of focused work.
Every step is one action:
Too big:
### Task 1: Build authentication system
[50 lines of code across 5 files]
Right size:
### Task 1: Create User model with email field
[10 lines, 1 file]
### Task 2: Add password hash field to User
[8 lines, 1 file]
### Task 3: Create password hashing utility
[15 lines, 1 file]
Every plan MUST start with:
# [Feature Name] Implementation Plan
> **For Kilo:** Use subagent-driven-development skill to implement this plan task-by-task.
**Goal:** [One sentence describing what this builds]
**Architecture:** [2-3 sentences about approach]
**Tech Stack:** [Key technologies/libraries]
---
Each task follows this format:
### Task N: [Descriptive Name]
**Objective:** What this task accomplishes (one sentence)
**Files:**
- Create: `exact/path/to/new_file.py`
- Modify: `exact/path/to/existing.py:45-67` (line numbers if known)
- Test: `tests/path/to/test_file.py`
**Step 1: Write failing test**
```python
def test_specific_behavior():
result = function(input)
assert result == expected
```
**Step 2: Run test to verify failure**
Run: `pytest tests/path/test.py::test_specific_behavior -v`
Expected: FAIL — "function not defined"
**Step 3: Write minimal implementation**
```python
def function(input):
return expected
```
**Step 4: Run test to verify pass**
Run: `pytest tests/path/test.py::test_specific_behavior -v`
Expected: PASS
**Step 5: Commit**
```bash
git add tests/path/test.py src/path/file.py
git commit -m "feat: add specific feature"
```
Read and understand:
Use Kilo Code tools to understand the project:
# Understand project structure (find Python files)
glob(pattern="src/**/*.py")
# Look at similar features (search existing patterns)
grep("similar_pattern", path="src/", include="*.py")
# Check existing test files
glob(pattern="tests/**/*.py")
# Read key files
read("src/app.py")
Decide:
Create tasks in order:
For each task, include:
src/config/settings.py)Check:
Bad: Copy-paste validation in 3 places Good: Extract validation function, use everywhere
Bad: Add "flexibility" for future requirements Good: Implement only what's needed now
# Bad — YAGNI violation
class User:
def __init__(self, name, email):
self.name = name
self.email = email
self.preferences = {} # Not needed yet!
self.metadata = {} # Not needed yet!
# Good — YAGNI
class User:
def __init__(self, name, email):
self.name = name
self.email = email
Every task that produces code should include the full TDD cycle:
See test-driven-development skill for details.
Commit after every task:
git add [files]
git commit -m "type: description"
Bad: "Add authentication" Good: "Create User model with email and password_hash fields"
Bad: "Step 1: Add validation function" Good: "Step 1: Add validation function" followed by the complete function code
Bad: "Step 3: Test it works"
Good: "Step 3: Run pytest tests/test_auth.py -v, expected: 3 passed"
Bad: "Create the model file"
Good: "Create: src/models/user.py"
After saving the plan, offer the execution approach:
"Plan complete and saved. Ready to execute using subagent-driven-development — I'll dispatch a fresh subagent per task with two-stage review (spec compliance then code quality). Shall I proceed?"
When executing, use the subagent-driven-development skill:
task per task with full contextBite-sized tasks (2-5 min each)
Exact file paths
Complete code (copy-pasteable)
Exact commands with expected output
Verification steps
DRY, YAGNI, TDD
Frequent commits
A good plan makes implementation obvious.
Bắt buộc khai báo độ phức tạp Big-O và cấu trúc dữ liệu trước khi viết thuật toán.
Guides stable API and interface design. Use when designing APIs, module boundaries, or any public interface. Use when creating REST or GraphQL endpoints, defining type contracts between modules, or establishing boundaries between frontend and backend.
Prevent commits that skip pre-commit hooks (--no-verify, -n). Auto-loads when git commit with bypass flags is attempted. Triggers: commit --no-verify, git commit -n, git push --no-verify.
Explore ideas before implementation, design features, make architecture decisions, and validate approaches. Use when: brainstorm, explore options, design, what approach, how should we, ideas, before building.
Tests in real browsers via Chrome DevTools MCP. Use when building or debugging anything that runs in a browser. Use when you need to inspect the DOM, capture console errors, analyze network requests, profile performance, or verify visual output with real runtime data. Requires the chrome-devtools MCP server to be configured.
Automates CI/CD pipeline setup. Use when setting up or modifying build and deployment pipelines.