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SkillsMay 13, 2026·3 min de lecture

Awesome AI Apps — RAG, Agents, Workflows & Use-Cases

High-signal directory of runnable AI apps (RAG, agents, workflows). Shortlist reference implementations and avoid rebuilding common patterns.

Prêt pour agents

Installation agent prête

Cet actif peut être installé après choix du runtime, vérification du plan et exécution de la commande adaptée.

Native · 98/100Policy : autoriser
Surface agent
Tout agent MCP/CLI
Type
Skill
Installation
Single
Confiance
Confiance : Established
Point d'entrée
Asset
Commande d'installation directe
npx -y tokrepo@latest install 99065617-8445-52a3-832f-07194aac7ed8 --target codex

À exécuter après confirmation du plan en dry-run.

Introduction

Awesome AI Apps is a curated map of practical AI applications you can run or fork, making it easier to find working examples of RAG and agent workflows.

Best for: Engineers looking for reference implementations of RAG, agents, and workflow patterns

Works with: GitHub repos across many stacks; follow each project's own setup docs

Setup time: 5–30 minutes (varies per app)

Key facts (verified)

  • Use it to build a “reference bench”: pick 2–3 apps per pattern and compare architecture decisions.
  • Prioritize repos with recent pushes and active issues/PRs to reduce maintenance risk.
  • GitHub: 12,142 stars · 1,551 forks; pushed 2026-05-09 (GitHub API verified).

Main

A good way to consume large “awesome” directories:

  1. Start from your goal (e.g., “RAG eval”, “agent + DB”, “workflow UI”) and shortlist 3 repos.
  2. Run at least one repo end-to-end and write down the exact commands + env vars you needed.
  3. Extract only the pieces you trust (auth, vector store, tracing) and keep them as internal templates.

README excerpt (verbatim)

Banner

Awesome AI Apps Awesome

Arindam200%2Fawesome-ai-apps | Trendshift

This repository is a comprehensive collection of 80+ practical examples, tutorials, and recipes for building powerful LLM-powered applications — including text agents, voice assistants, RAG apps, and MCP-backed tools. These projects serve as a guide for developers working with various AI frameworks and stacks.

📋 Table of Contents


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Source et remerciements

Source: https://github.com/Arindam200/awesome-ai-apps > License: MIT > GitHub stars: 12,142 · forks: 1,551

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