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Entrepreneur PM Framework

by forevercrab321-svg · GitHub ↗ · v1.0.0 · MIT-0
cross-platform ⚠ suspicious
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Install in OpenClaw
/install entrepreneur-pm
Description
企业家 PM 思维框架 Skill — 面向 Leevar 团队管理层。激活场景:(1) 分配 Agent 处理复杂多步骤任务,(2) 确保 Agent 精准理解并达成用户目标,(3) 让 Agent 100% 按任务需求调用已掌握的 Skill,(4) 促进管理层持续学习和经验积累,(5) 任何涉及"如何更好地...
README (SKILL.md)

Entrepreneur PM 框架

Lee 的 AI 团队管理操作系统。面对任何团队管理、任务分配、Agent 协作问题,强制执行以下框架。


核心三原则

1. 精准路由 — 把对的任务给对的 Agent

2. 目标对齐 — 确保 Agent 真正理解用户需求

3. Skill 强制调用 — Agent 必须使用已掌握的 Skill,不得重复造轮子


原则 1:精准路由

每次任务分配前,强制执行 3 秒决策:

任务是什么?
  ↓
哪个 Agent 拥有最相关的 Skill?
  ↓
这个 Agent 现在有能力执行吗?(工具权限 / Skill 已加载)
  ↓
任务包需要什么输入?我是否都提供了?

团队路由矩阵(快速参考):

任务类型 首选 Agent 备选
Shopify 产品/订单/主题 Shopify Writer subagent cloud browser
市场数据/期权分析 MarketWatcher sessions_spawn
供应商研究/选品 SupplierAgent batch_web_search
社媒内容创作 SocialAgent / ContentAgent Mia subagent
外链开发/潜在客户 OutreachAgent Kai subagent
代码/自动化/API sessions_spawn(acp) exec
视觉验证/截图 cloud browser LocalAgent
本地登录/2FA LocalAgent/Hex 仅此路径

路由质量标准:

  • ✅ 任务包含:目标、背景、输出格式、截止时间
  • ✅ 已明确说明 Agent 应调用哪些 Skill
  • ✅ 已说明成功的验收标准
  • ❌ 不可以:任务描述模糊、输出路径不明、没有验证要求

原则 2:目标对齐 — 确保 Agent 理解用户真实需求

任务包标准模板(每次分配都要用):

## 任务目标
[Lee 真正想要的结果,不只是表面任务]

## 背景
[为什么要做这件事,有哪些约束]

## 具体要求
1. [步骤1]
2. [步骤2]
...

## 输出要求
- 格式:[JSON / Markdown / 直接操作]
- 存放位置:[具体文件路径]
- 验证方法:[如何确认成功]

## 禁止事项
- [不得做的事,避免 Agent 走弯路]

## 时间要求
[紧急/正常/下次巡逻时完成]

对齐检查(任务发出前):

  • Agent 有没有可能误解任务?
  • 我有没有说清楚"完成"的标准?
  • Agent 知道遇到阻塞时怎么办吗?

原则 3:Skill 强制调用

为什么重要: Agent 有时会"重新发明轮子"——写全新代码而不是调用已有 Skill。这浪费时间,产生不一致的结果。

任务包中必须包含 Skill 指引:

## 要求使用的 Skill
- 使用 [skill-name] Skill 处理 [具体环节]
- 参考 /root/.openclaw/skills/[skill-folder]/SKILL.md
- 不得绕过 Skill 自行实现相同功能

可用 Skill 速查(常用):

Skill 用途
minimax-xlsx 表格/数据/Excel 生成
minimax-pdf PDF 报告输出
minimax-docx Word 文档输出
superdesign 前端 UI 设计
cron-mastery 定时任务/提醒设置
self-improving-agent 错误记录/经验沉淀
automation-workflows 自动化流程设计
leevar-entrepreneur 商业决策框架
agent-team-orchestration 多 Agent 协作设计
weather 天气查询
options-trader 期权交易分析

完整列表:/root/.openclaw/skills/


管理层持续学习系统

每次任务完成后:30 秒经验沉淀

## 任务复盘模板

任务:[一句话]
结果:✅成功 / ⚠️部分完成 / ❌失败

学到了什么:
- [新发现的规律或方法]

下次更好:
- [改进点]

沉淀到 Skill:是/否
→ 若是,更新:[Skill 路径]

写入位置: /workspace/memory/learnings-[YYYY-MM].md

经验积累层级

单次任务经验
    ↓ 复盘沉淀
Agent LEARNING.md(每个 Agent 专属)
    ↓ 提炼共性
Skill 更新(rules/references 更新)
    ↓ 内化
下次自动调用正确方法

管理层 KPI(每周一次 Lee 评审)

指标 目标 来源
任务首次成功率 >80% 任务报告
Agent 路由准确率 >90% 任务日志
Skill 调用率 >70% 代码审查
平均任务周期 \x3C15分钟/任务 时间戳
经验沉淀频率 每周≥3条 LEARNING.md

常见失败模式 & 修复

失败模式 症状 修复
任务包模糊 Agent 返回无用输出 用模板重写任务包
路由错误 错的 Agent 接了任务 参考路由矩阵重新分配
没用 Skill Agent 自写代码完成已有 Skill 的功能 在任务包中明确指定 Skill
无验证标准 Agent 自称完成但结果无法核实 所有任务必须有验收标准
经验未沉淀 同样错误反复出现 强制执行 30 秒复盘模板

参考文档

  • 任务包完整案例:见 references/task-examples.md
  • Agent 能力矩阵详细版:见 references/agent-capabilities.md
  • 经验积累历史:见 /workspace/memory/
Usage Guidance
This skill reads like an internal PM playbook for orchestrating agents and is plausible for a trusted internal team, but there are transparency and privilege concerns you should address before installing: 1) The skill documentation expects access to local secret files (/home/minimax/.openclaw/secrets/.env) and skill directories (/root/.openclaw/skills/) but the manifest does not declare those requirements — confirm whether the agent runtime will actually grant such access. 2) The instructions ask agents to update other skills and write into shared paths; consider restricting write permissions so the skill cannot modify other skills or system-wide files without human review. 3) If the skill will interact with external APIs (e.g., Shopify), ensure tokens are stored securely and that the skill cannot exfiltrate them — require explicit, audited grant of any credentials. 4) Run this skill in a controlled/staging environment first, enable logging/auditing of file writes and config changes, and maintain backups of skill directories. 5) Ask the publisher to update the manifest to explicitly declare any required config paths or credentials and to document precisely which files the skill will write to and under what conditions.
Capability Analysis
Type: OpenClaw Skill Name: entrepreneur-pm Version: 1.0.0 The entrepreneur-pm skill bundle is a structured management framework designed to coordinate AI agents for business tasks like Shopify management and market analysis. It includes detailed routing matrices, task templates, and explicit security 'Iron Rules' in references/agent-capabilities.md that forbid logging tokens or storing secrets in insecure locations. The bundle demonstrates clear benign intent by focusing on operational efficiency, task verification, and experience accumulation (e.g., in /workspace/memory/) without any signs of malicious execution or data exfiltration.
Capability Assessment
Purpose & Capability
The name and description (PM / agent orchestration) match the instructions: routing tasks, enforcing use of skills, and capturing learnings. However, SKILL.md references specific system paths (/root/.openclaw/skills/, /home/minimax/.openclaw/secrets/.env, /workspace/...) and external APIs (Shopify endpoints) while the skill manifest declares no required config paths or credentials — an inconsistency that should be explained (the framework expects local secret and skill storage but does not declare them).
Instruction Scope
The instructions explicitly instruct agents to read from and write to local paths (skill folders, /workspace/memory, secrets path) and to 'update' Skill files as part of experience-sinking. They also include operational steps that call external services (Shopify API examples) and require direct updates to third‑party systems. Directing agents to modify other skills' files or to perform direct API modifications expands scope beyond a passive orchestration guide and can change system behavior.
Install Mechanism
Instruction-only skill with no install spec and no code files — lowest install risk. Nothing will be written to disk by an installer step.
Credentials
The skill manifest lists no required environment variables or config paths, yet the documentation repeatedly references secret storage locations and an admin Shopify token path. Asking runtime instructions to access secrets or tokens (even indirectly) without declaring them is disproportionate and a transparency gap: users cannot see from the manifest that the skill expects access to sensitive credentials.
Persistence & Privilege
always:false and autonomous invocation are fine, but the content explicitly encourages updating other skills and writing to team-level directories (e.g., '更新:[Skill 路径]'). Allowing an agent to edit other skills or shared skill definitions increases privilege/persistence risk because it can change behavior of other skills and future agent runs.
How to Use
  1. Make sure OpenClaw is installed (local or Docker)
  2. Run the install command in chat: /install entrepreneur-pm
  3. After installation, invoke the skill by name or use /entrepreneur-pm
  4. Provide required inputs per the skill's parameter spec and get structured output
Version History
v1.0.0
AI team management framework: precise agent routing, task alignment, skill enforcement, and continuous learning for solopreneur operators
Metadata
Slug entrepreneur-pm
Version 1.0.0
License MIT-0
All-time Installs 0
Active Installs 0
Total Versions 1
Frequently Asked Questions

What is Entrepreneur PM Framework?

企业家 PM 思维框架 Skill — 面向 Leevar 团队管理层。激活场景:(1) 分配 Agent 处理复杂多步骤任务,(2) 确保 Agent 精准理解并达成用户目标,(3) 让 Agent 100% 按任务需求调用已掌握的 Skill,(4) 促进管理层持续学习和经验积累,(5) 任何涉及"如何更好地... It is an AI Agent Skill for Claude Code / OpenClaw, with 237 downloads so far.

How do I install Entrepreneur PM Framework?

Run "/install entrepreneur-pm" in the OpenClaw or Claude Code chat to install it in one step — no extra setup required.

Is Entrepreneur PM Framework free?

Yes, Entrepreneur PM Framework is completely free, licensed under MIT-0. You can download, install and use it at no cost.

Which platforms does Entrepreneur PM Framework support?

Entrepreneur PM Framework is cross-platform and runs anywhere OpenClaw / Claude Code is available (cross-platform).

Who created Entrepreneur PM Framework?

It is built and maintained by forevercrab321-svg (@forevercrab321-svg); the current version is v1.0.0.

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