EXL
EXL·2 days ago

Senior manager, rag/llm specialist

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Location

onsite, Gurugram, India

Commitment

Full Time

Level

Senior (5+ years)

Required skills

PythonPyTorchTensorFlowLangChainLlamaIndexRAGLLMFine-tuningPEFTLoRAPrompt EngineeringVector DatabasesPineconeMilvusRAGASMachine Learning

Job Description

Role Overview:

Lead the design and optimization of advanced RAG pipelines and model finetuning processes. Bridge the gap between prototype and enterprise-scale LLM deployment.

RESPONSIBILITIES

Key Responsibilities

  • Pipeline Ownership: Design and manage complex, multi-stage RAG pipelines ensuring low latency and high relevance.
  • Model Optimization: Lead fine-tuning initiatives (PEFT/LoRA) for open-source models to improve domain-specific task performance.
  • Advanced Evaluation: Develop automated evaluation frameworks (e.g., RAGAS) to continually measure LLM accuracy, context precision, and recall.
  • Vector Strategy: Architect metadata filtering and hybrid search strategies within vector databases (e.g., Pinecone, Milvus).
  • Team Mentorship: Guide junior analysts in prompt engineering, chunking strategies, and code quality.

QUALIFICATIONS

  • Tech Stack: Python, PyTorch/TensorFlow, LangChain, LlamaIndex, advanced embedding models.
  • GenAI Skills: Deep expertise in advanced RAG (HyDE, parent-document retrieval), prompt optimization, and parameter-efficient fine-tuning.
  • Qualifications: Bachelor’s/Master’s in CS/Data Science with 4–7 years in ML/AI, including 1+ years specifically working with LLMs.

Ready to join the team?

Apply now