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RAG Pipeline

Retrieval-Augmented Generation Β· Notion Β· Chroma Β· Qdrant

The $0 AI Architecture Stack Β· 2026

What is the RAG Pipeline?

The RAG Pipeline gives the LLM external knowledge it wasn't trained on. Source documents (e.g. from Notion) are chunked, embedded, and stored in a vector database. At query time the most relevant chunks are retrieved and injected as context. Use Chroma for simple local storage or Qdrant for a fast, production-grade vector DB running locally.

Tools in this Layer

πŸ“” Notion

Use Notion as a knowledge base β€” sync pages and databases as RAG source documents.

🌈 Chroma

Lightweight, embeddable vector store β€” perfect for prototypes and small datasets.

πŸŸ₯ Qdrant

High-performance vector database with filtering, runs locally with zero cost.

Cost

$0 / free tier

Chroma and Qdrant are open-source; Notion has a generous free plan.

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