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rag-retrieval

Design and implement RAG retrieval pipelines — choose chunking strategies, select embedding models, configure vector stores, wire hybrid search with BM25+dense, add reranking stages, and pack retrieved context into LLM prompts. Use when building or debugging document ingestion, retrieval, or context assembly for LLM applications. Do not use for LLM prompt engineering without retrieval, or for search systems that do not feed into generative models.

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Repository
merceralex397-collab/meta-skill-engineering
Last source activity
April 20, 2026 at 01:25
Detected SKILL.md language
English
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2
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0

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