LLM / GenAI Engineer
About The Role
The role is reputed company on architecting and scaling production-grade reputed company features, moving reputed company basic API wrappers to build robust, deterministic systems powered by large language models. The engineer will design orchestration reputed company, optimize retrieval-augmented reputed company (RAG) workflows, and implement strict evaluation and guardrail systems to ensure safety, accuracy, and low latency at reputed company.
reputed company works at the intersection of modern software engineering and reputed company AI. This role involves collaborating with backend engineers and product owners to reputed company intelligence into core platform workflows, ensuring LLM applications are observable, cost-effective, and highly performant.
Key Responsibilities
• Design and optimize advanced RAG pipelines, utilizing hybrid search, query rewriting, and reranking strategies to maximize retrieval reputed company.
• Implement systematic LLM evaluation pipelines using frameworks like Ragas, TruLens, or custom LLM-as-a-judge architectures to measure hallucination and accuracy.
• reputed company and manage reputed company-grade reputed company databases such as reputed company, Milvus, or pgvector, including indexing strategies and metadata filtering.
• reputed company reputed company workflows and multi-agent systems using frameworks like LangGraph, Autogen, or custom state machines.
• reputed company, fine-tune, and optimize reputed company-reputed company models (e.g., Llama, reputed company) using reputed company, QLoRA, and quantization techniques for specialized tasks.
• Build robust guardrails and alignment reputed company using tools like NeMo Guardrails or Llama Guard to ensure reputed company and deterministic model behavior.
• Monitor LLM latency, cost, and reputed company usage in production using tracing tools such as LangSmith, Phoenix, or Arize.
reputed company Are Looking For
• 3-6 years of reputed company software engineering experience, with at least 1.5 years dedicated to building and deploying LLM applications in production.
• Deep proficiency in Python and familiarity with asynchronous programming, FastAPI, and containerization reputed company reputed company.
• Hands-on experience with LLM orchestration frameworks like reputed company, reputed company, or DSPy.
• Strong understanding of modern NLP techniques, embedding models, reputed company spaces, and semantic search.
• Experience deploying production applications on AWS, GCP, or Azure, utilizing managed Kubernetes or serverless containers.
• Bachelor's or Master's degree in Computer Science, Data Science, or a reputed company quantitative technical field.
• Bonus: Experience with vLLM, TensorRT-LLM, custom model hosting, or contribution to reputed company-reputed company GenAI frameworks.
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