381,784 Collected SKILL.md files

Explore AI Agent Skills & Claude Prompts

Discover open-source agent skills for Claude Code, Codex, ChatGPT, and any tool that uses SKILL.md.

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ITValley-School
Showing 12 of 12 skills
ITValley-School

06-dev-mockado

by ITValley-School
star 1

Agente 06 da esteira IT Valley. Use para criar o prototipo clicavel completo em SvelteKit com dados falsos realistas. O cliente valida o fluxo antes do backend existir. Cria a pasta /mocks usada por todos os devs. Acionado apos Agentes 04 e 05.

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schedule Updated 3 months ago
ITValley-School

13-qa-tela

by ITValley-School
star 1

Executar o papel 'QA Tela' na esteira IT Valley com base no prompt oficial do agente 13.

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schedule Updated 3 months ago
ITValley-School

15-guardiao-de-arquitetura

by ITValley-School
star 1

Agente 15 da esteira IT Valley. Use para verificar aderencia arquitetural dos pacotes em desenvolvimento e bloquear avancos quando houver violacao. Deve ser executado antes e durante o Agente 10 e antes de liberar para QA.

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schedule Updated 3 months ago
ITValley-School

11-qa-unitario

by ITValley-School
star 1

Agente 11 da esteira IT Valley. Use para testar cada dev feature (caso de uso) isoladamente antes de seguir para integracao. Valida DTOs, Factory, Services, UI e isolamento de tenant. Acionado apos Agentes 09 e 10.

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schedule Updated 3 months ago
ITValley-School

08-p-o-product-owner

by ITValley-School
star 1

Agente 08 da esteira IT Valley. Use para dividir o sistema em dominios e casos de uso, mapear dependencias, definir ordem e preparar pacotes de dev features completos para Dev Front e Dev Back. Acionado apos todos os arquitetos (03, 04, 05, 07).

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schedule Updated 3 months ago
ITValley-School

08-b-gerente-de-projetos

by ITValley-School
star 1

Agente 08-b da esteira IT Valley. Use para gerar o documento de gestao de projeto com todos os dominios, casos de uso e status mapeados. Acionado obrigatoriamente apos o P.O. (Agente 08).

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schedule Updated 3 months ago
ITValley-School

09-dev-frontend

by ITValley-School
star 1

Agente 09 da esteira IT Valley. Use para implementar o pacote frontend SvelteKit recebido do P.O. seguindo rigorosamente a arquitetura limpa IT Valley com componentes por dominio, DTOs imutaveis, Services estaticos e design tokens no app.css. Consulta continuamente Agente 03 e Agente 04. Acionado apos Agente 08.

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schedule Updated 3 months ago
ITValley-School

14-playwright-e2e

by ITValley-School
star 1

Executar o papel 'Playwright E2E' na esteira IT Valley com base no prompt oficial do agente 14.

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schedule Updated 3 months ago
ITValley-School

07-arquiteto-sql-plus-mongodb

by ITValley-School
star 1

Agente 07 da esteira IT Valley. Use para modelar banco relacional (SQL) e NoSQL (MongoDB) apos os DTOs backend (Agente 03) e mock validado (Agente 06). Gera scripts prontos para execucao com estrutura de pastas padrao IT Valley.

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schedule Updated 3 months ago
ITValley-School

12-qa-integracao

by ITValley-School
star 1

Executar o papel 'QA Integracao' na esteira IT Valley com base no prompt oficial do agente 12.

navigation main article SKILL.md
schedule Updated 3 months ago
ITValley-School

04-arquiteto-it-valley-frontend

by ITValley-School
star 1

Agente 04 da esteira IT Valley. Use para definir arquitetura frontend SvelteKit com DTOs TypeScript, Services, Repositories e estrutura de componentes por dominio. Segue contratos do Agente 03. Acionado apos Agentes 02 e 03.

navigation main article SKILL.md
schedule Updated 3 months ago
ITValley-School

05-arquiteto-designer

by ITValley-School
star 1

Executar o papel 'Arquiteto Designer' na esteira IT Valley com base no prompt oficial do agente 05.

navigation main article SKILL.md
schedule Updated 3 months ago
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Browse Agent Skills by Occupation

23 major groups · 867 SOC occupations

Browse by Category

Explore agent skills organized by their primary use case

SKILLMD / CREATORS AND OCCUPATION CATEGORIES

Explore the agent skills ecosystem by occupation and creator

SkillMD is not just a keyword search box. It is an open map that organizes public skills by occupation, creator, and repository, helping you see which workflows, judgment criteria, and domain habits people are writing for AI agents.

Then follow creators and GitHub repositories back to the source: compare the skills a team maintains, whether the repo is active, and how the README frames the work before you open, install, or reuse anything.

Use it three ways: learn an unfamiliar field by occupation, study how creators organize skills, then use source context to decide what is worth opening or reusing.

01 Map a field

Browse 23 occupation groups and 867 SOC roles to learn what skills exist in adjacent domains and how they break down real work.

02 Follow creators

Use creator and repository pages to inspect maintained skill collections, recent updates, and source context before trusting a result.

03 Search with sources

Search 1.7M+ collected skills, then use occupation tags, creators, and GitHub source context to decide what is worth opening.

Start with the occupation map, then follow creators and repositories back to real code. SkillMD helps explain why a skill is worth opening, not only what it is named.

SEO KNOWLEDGE HUB & TECHNICAL OVERVIEW

Standardizing Agent Capabilities with SKILL.md and Model Context Protocol (MCP)

In the rapidly evolving landscape of artificial intelligence, LLM agents (Large Language Model agents) have transitioned from simple text predictors to autonomous problem solvers. To orchestrate complex, multi-step agentic workflows, developers require a standardized format to specify agent capabilities, prompt instructions, system rules, and database bindings. This is where SKILL.md and the Model Context Protocol (MCP) have emerged as standard developer paradigms. SkillMD serves as the central directory for indexing, exploring, and sharing these critical agent configurations.

Our open-source registry currently tracks over 1.7 million collected SKILL.md configurations and system prompts. By compiling agent configurations from active developers on GitHub, we bridge the gap between prompt engineering research and production execution. Whether you are building agents with Anthropic's Claude Code, OpenAI's GPT-4, Google's Gemini, or local models using Ollama and LlamaIndex, standardized skill definitions ensure your agents behave predictably across different runtime environments.

What is the Model Context Protocol (MCP)?

The Model Context Protocol (MCP) is an open-source standard designed to connect LLMs to data sources, developer tools, and external environments. MCP establishes a bidirectional communication channel between client applications (like Cursor, Claude Desktop, or custom agent systems) and servers hosting data or capabilities. Standardizing instructions via SKILL.md enables LLMs to query databases, read local files, execute terminal commands, and integrate third-party APIs. SkillMD allows you to find ready-to-run MCP servers and prompt instructions for various occupations and technical tasks.

The Structure of a Professional SKILL.md File

A valid SKILL.md configuration is designed to be easily read by humans and parsed by LLMs. It contains precise system instructions, trigger conditions, required parameters, and execution examples. Below is the typical architectural blueprint of a professional agent skill:

  • Metadata & Core Scope: Declares the name of the skill, author details, target models, and a description of the capability.
  • Triggers & Intent Detection: Details semantic triggers that help the agent decide when to invoke this skill.
  • System Prompts: Explicit system-level instructions that direct the agent's behavior, personality, safety guardrails, and formatting preferences.
  • Capabilities & Tools: Lists the files, databases, or APIs the agent must access to complete the tasks.
  • Few-Shot Examples: Demonstrates real inputs and outputs, helping the model generalize behavior through in-context learning.

Optimizing Agent Workflows for Modern LLMs

Writing effective agent skills requires deep knowledge of prompt engineering. With the release of advanced reasoning models like Claude 3.5 Sonnet, ChatGPT o1, and DeepSeek-V3, prompt templates must focus on structured thinking. Developers are encouraged to use XML tags (e.g., <thought>, <context>, and <rules>) to isolate execution boundaries. Standardized prompts prevent agents from suffering from context drift, ensuring that long-running tasks remain aligned with the initial system parameters.

Exploring by SOC Occupations and Creator Profiles

What makes SkillMD unique is its taxonomy. Instead of simple text search, we parse and organize files according to the Standard Occupational Classification (SOC) system. This means you can discover skills written for Computer and Mathematical roles, Business and Financial operations, Legal, Design, and and Educational Instruction fields. By tracking creator profiles, developers can study how different teams organize their custom instructions, compare version updates, and fork public configs for specialized enterprise use cases.

SkillMD operates as a high-performance index running on a fast Go backend and a highly responsive Astro SSR frontend. All search queries execute in milliseconds, featuring smart debouncing to prevent multiple API requests while keeping user data secure. Join our community of developers to standardize your AI agent instructions and optimize your LLM prompting workflows today.

8 QUESTIONS

Frequently Asked Questions

A practical guide to agent skills: what they are, how to inspect them, and how SkillMD helps you explore the ecosystem.