Build agent from spec: code, skill, config, launchd
Scanned 9/5/2026
Install to Claude Code
npx -y skills add aAAaqwq/AGI-Super-Skills --skill agent-builder --agent claude-codeInstalls into .claude/skills of the current project.
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---
name: agent-builder
description: Build agent from spec: code, skill, config, launchd
---
# Agent Builder
> Takes a spec from Process Analyst and implements the agent: code, skill, config, launchd.
## When to use
- After Process Analyst has created a spec
- "build an agent for process X"
- "implement spec Y"
## Input
Spec file from `$AGENTS_PATH/specs/[name].spec.md`
## How to execute
### Step 1: Read the spec
- Read the spec file completely
- Read the reference implementation: Email Pipeline (`$GOOGLE_TOOLS_PATH/email_agent.py`)
- Understand the pipeline: trigger → steps → output
### Step 2: Define architecture
Based on the spec, define:
```
agents/[name]/
├── [name]_agent.py ← Main agent script
├── config.json ← Configuration (paths, params)
├── README.md ← Documentation
└── test_[name].py ← Tests
```
**Build rules:**
1. **One file = one step** (if step is complex) or **one file = entire pipeline** (if simple)
2. **Claude CLI for AI** — use `claude -p --model [model]` instead of API key
3. **CSV for data** — read/write via pandas or csv module
4. **Git auto-commit** — if agent modifies CRM/PM data
5. **Telegram notification** — if human approval is needed
6. **Dry-run mode** — mandatory `--dry-run` flag
7. **Logging** — stdout for launchd, file for debug
8. **Idempotency** — re-run must not duplicate data
### Step 3: Build
For each step from the spec:
1. Write the function/script
2. Handle errors according to the spec
3. Add logging
4. Add dry-run branch
### Step 4: Create skill
Create skill file `skills/agents/[name]-run.md` with instructions on how to run the agent manually.
### Step 5: Create launchd plist (if scheduled)
```xml
<?xml version="1.0" encoding="UTF-8"?>
<!DOCTYPE plist PUBLIC "-//Apple//DTD PLIST 1.0//EN" "...">
<plist version="1.0">
<dict>
<key>Label</key>
<string>com.yourcompany.[name]-agent</string>
<key>ProgramArguments</key>
<array>
<string>/usr/bin/python3</string>
<string>$AGENTS_PATH/[name]/[name]_agent.py</string>
</array>
<key>StartInterval</key>
<integer>[seconds]</integer>
<key>StandardOutPath</key>
<string>/tmp/[name]-agent.log</string>
<key>StandardErrorPath</key>
<string>/tmp/[name]-agent-error.log</string>
</dict>
</plist>
```
### Step 6: Hand off to Agent Tester
Notify that the agent is ready for testing.
## Output
- Agent code in `$AGENTS_PATH/[name]/`
- Skill file in `$SKILLS_PATH/skills/agents/`
- Launchd plist (if scheduled)
## Examples
### Reference: Email Pipeline
```
google-tools/
├── email_monitor.py ← Step 1: Gmail API check
├── email_agent.py ← Step 2: AI classify (haiku)
├── email_action_agent.py ← Step 3: CRM match + log
└── data/
├── email_summaries/ ← Output: summaries
└── email_drafts/ ← Output: draft replies
```
Trigger: launchd every 3600s
Model: Claude haiku (classification)
Output: CRM activities + PM tasks + drafts + Telegram notify
## Related skills
- `process-analyst` — creates the spec
- `agent-tester` — tests the agent
- `git-workflow` — commit and PR
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