Senior LLM Engineer

Remote (MH, IN)Remote (region-locked)LeadFound today
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langchainlanggraphpythonllmagentic airagvector databasesmlops

About the role:

The individual will lead the design, development, and deployment of complex, autonomous agentic AI solutions within production environments, working across multi-agent frameworks and orchestrating large language models. The position is for scalable applied AI, with a focus on delivering robust and fair agentic systems that deliver organizational value, autonomy, and operational efficiency.

Responsibilities:

  • Architect and deploy scalable multi-agent AI systems with advanced tool integration.
  • Build and optimize AI pipelines using frameworks like LangGraph, ADK, and LangChain.
  • Integrate agentic AI into enterprise workflows to automate complex business processes.
  • Review and execute code written by AI agents to ensure correctness and maintainability.
  • Review agent configurations, prompts, and tool wrappers to prevent behavioral or performance regressions.
  • Audit agent-generated ML workflows to catch flaws like target leakage.
  • Launch, monitor, and debug distributed training jobs and auto-repair loops.
  • Design evaluation suites and end-to-end scenarios for non-deterministic agents.
  • Debug agent workflows and align systems with regulatory and ethical standards.
  • Ensure security, transparency, fairness, and reliability across AI systems.
  • Mentor engineers and promote modern LLM practices across teams.

Requirements:

  • 4+ years of industry experience, including 1+ years with agentic orchestration frameworks (LangChain, LangGraph, ADK).
  • Proficiency in multi-agent framework design, tool calling, API orchestration, and vector databases/RAG.
  • Experience with continuous monitoring, telemetry, and observability tooling for non-deterministic AI agents.
  • Strong background in LLM evaluation methodologies (code-based, LLM-as-a-Judge) and end-to-end testing.
  • Strong Python skills (type hints, absl, absltest) and senior-level code/prompt reviewing capabilities.
  • Practical knowledge of the ML lifecycle (data preprocessing, feature engineering, model design, JAX/TensorFlow).
  • Experience launching and debugging distributed training jobs across cloud platforms (AWS, GCP, Azure).
  • Knowledge of MLOps practices, data privacy, model security, and AI compliance regulations.

Preferred Skills:

  • On-device ML (TFLite, Edge TPU, Gemini Nano, latency and power profiling).
  • Experience with Hugging Face, Neo4j, or knowledge graphs.
  • Background in autonomous decision-making systems, anomaly detection, and dynamic process optimization.
  • Track record of publishing, presenting, or open-sourcing agentic AI innovations.
  • Strong problem-solving aptitude, collaborative mindset, and excellent communication skills.

Location: Ahmedabad/Pune

Pay: ₹1,500,000.00 - ₹3,500,000.00 per year

Benefits:

  • Health insurance
  • Provident Fund
  • Work from home

Work Location: In person

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Infocusp Innovations LLPSenior LLM Engineer
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