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Design and implement Retrieval -Augmented Generation (RAG) pipelines and architectures.
Develop document retrieval, contextual augmentation, and chunking strategies for large -scale unstructured data.
Optimize RAG indexing, retrieval accuracy, and context relevance using advanced evaluation metrics.
Implement fine -tuning and prompt engineering techniques to improve retrieval and generation quality.
Manage token limits, context windows, and retrieval latency for high -performance inference.
Integrate LLM frameworks like LangChain or LlamaIndex for pipeline orchestration.
Utilize APIs from OpenAI, Hugging Face Transformers, or other LLM providers for model integration.
Perform noise reduction, diversity sampling, and retrieval optimization to enhance output reliability.
Collaborate with cross -functional teams to deploy scalable RAG -based analytics solutions.
Experience in MLOps for deploying and monitoring LLM/RAG -based solutions.
Understanding of semantic search algorithms and context ranking models.
Exposure to knowledge retrieval, contextual augmentation, or multi -document summarization.
Master’s degree in Computer Science, Artificial Intelligence, Data Science, or related field.
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