AI Engineer - RAG Pipeline (OpenAI / LLMs)
Бюджэт: $15.0 - $30.0
HOURLY / FULL_TIME
⭐ 0.00 (0)
United Arab Emirates
python, javascript
Пераважная кваліфікацыя
- Вопыт: Эксперт
Job Title: AI Engineer – RAG Pipeline (OpenAI / LLMs)
I need a production-ready RAG pipeline that turns a large internal document library into a precise, source-cited Q&A system. This is not a demo it must handle complex queries with high accuracy and low latency.
Timeline: 4–5 weeks.
Rate: Based on experience and proposed architecture to be discussed.
What You'll Build:
Ingest & chunk documents (semantic/sliding-window).
Select & deploy embeddings (OpenAI or open-source).
Set up vector DB (Pinecone/Weaviate/Qdrant/PGVector).
Implement hybrid search + cross-encoder re-ranking.
Orchestrate pipeline with LangChain or LlamaIndex.
Engineer prompts for GPT-4o/Claude 3.5 with citation guardrails.
Add evaluation (RAGAS or QA benchmarks).
Deliver a secure FastAPI endpoint.
Must-Haves:
Python expert with visible RAG/LLM projects in portfolio/GitHub.
Hands-on: OpenAI API, vector DBs, and LangChain/LlamaIndex.
Deep understanding of retrieval optimization and chunking strategies.
Clear, proactive communication in English.
Nice-to-haves: Docker, cloud (AWS/GCP/Azure), MLOps.
To Apply:
Start your proposal with the word LLM at the very top. Then briefly tell me:
Your approach to chunking & retrieval for this use case.
Your recommended tech stack.
GitHub and portfolio showcasing live RAG or LLM projects please share specific examples in your proposal.
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