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LLM Operations Engineer

Accenture
NewPosted today

LOCATION

Bengaluru · Onsite

EXPERIENCE

3 - 8 Years

TYPE

FullTime

SALARY

Negotiable

SKILLS REQUIRED

LLM EvaluationAgentic AIRetrieval-Augmented GenerationPrompt EngineeringMonitoring and Logging

Job description

Overview

Design and deploy intelligent, autonomous solutions using Generative AI, Large Language Models (LLMs), and multi-agent systems. Build LLM-powered, agent-driven architectures that reason, collaborate, and execute complex workflows across enterprise systems.

What you'll do

  • Design and build multi-agent AI systems capable of planning, reasoning, and task execution.
  • Develop applications using LLMs such as GPT, Claude, and Llama with advanced prompt engineering and orchestration.
  • Implement Agentic workflows using planner, executor, critic, and memory loops.
  • Build Retrieval-Augmented Generation (RAG) pipelines with vector databases for enterprise knowledge grounding.
  • Develop tool-using agents that integrate with APIs, databases, and enterprise systems.
  • Architect and deploy AI copilots and autonomous assistants for business workflows.
  • Optimize LLM performance using fine-tuning, prompt chaining, and caching strategies.
  • Implement short-term and long-term memory mechanisms using vector stores and knowledge graphs.
  • Design multi-agent collaboration protocols including hierarchical, swarm, and role-based agents.
  • Deploy scalable solutions using MLOps and LLMOps practices, including monitoring, evaluation, and guardrails.
  • Ensure AI safety, governance, and responsible AI practices.

What you'll need

  • Generative AI, Large Language Models (LLMs), Machine Learning Operations, and Agentic AI skills.
  • Minimum 3 year(s) of experience.
  • 3–8 years' experience in AI/ML with a strong focus on Generative AI.
  • 15 years full time education.
  • Experience building multi-agent orchestration systems with role-based coordination.
  • Exposure to agent planning algorithms such as ReAct, Plan-and-Execute, and Tree of Thought.
  • Experience with LLM evaluation frameworks such as RAGAS, TruLens, and Promptfoo.
  • Knowledge of graph-based reasoning and knowledge graphs.
  • Experience building autonomous systems or copilots in enterprise environments.
  • Strong Python development skills.
  • Hands-on experience with LLMs and GenAI frameworks.
  • Hands-on experience with OpenAI and Hugging Face Transformers.
  • Hands-on experience with agent frameworks including LangChain, AutoGen, CrewAI, and Semantic Kernel.
  • Hands-on experience with RAG pipelines and vector databases including FAISS, Pinecone, and Weaviate.
  • Experience building API-driven, tool-integrated AI agents.
  • Strong understanding of prompt engineering and prompt optimization.
  • Strong understanding of chain-of-thought reasoning and tool augmentation.
  • Strong understanding of context management and token optimization.
  • Experience with cloud platforms; Azure OpenAI is preferred, and AWS/GCP is acceptable.
  • Knowledge of Docker, Kubernetes, and CI/CD pipelines.

Nice to have

  • Domain experience in industrial, energy, or IoT environments.
  • Systems thinking for designing autonomous AI architectures.
  • Strong problem decomposition for agent task design.
  • Ability to balance latency, cost, and accuracy in LLM systems.
  • Communication with business stakeholders to translate workflows into agent pipelines.
  • Innovation mindset with focus on applying agentic AI in production.

Details

  • Position based at the Pune office.

Read the full description and apply on the company’s own careers page.

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LLM Operations Engineer