Gen AI Engineer

PeopleScout
Bengaluru, Karnataka, India

Generative AI Engineer (Multi-Agent AI & RAG)

📍 Location: Hyderabad / Bangalore / Noida / Gurgaon

🏠 Work Model: Hybrid / Remote

📅 Working Days: 5 Days a Week

💼 Experience: 6+ Years

Role Overview

We are seeking an experienced Generative AI Engineer with strong expertise in Multi-Agent AI Systems and RAG (Retrieval-Augmented Generation) Architecture. The ideal candidate should have hands-on experience designing, developing, and deploying enterprise-grade AI solutions powered by LLMs, agent orchestration, semantic retrieval, and intelligent automation.

Key Responsibilities

  • Design and develop enterprise-scale Multi-Agent AI solutions.
  • Build and optimize RAG architectures, including ingestion, chunking, embeddings, vector indexing, retrieval, and grounded response generation.
  • Develop agent workflows involving orchestration, tool calling, routing, memory, and decision-making.
  • Integrate AI applications with enterprise systems, APIs, databases, and knowledge repositories.
  • Implement prompt engineering, evaluation mechanisms, guardrails, and hallucination-reduction strategies.
  • Build scalable backend services and APIs for AI-powered applications.
  • Deploy, monitor, and optimize AI solutions in cloud environments.

Mandatory Requirements

  • 4+ years of overall IT experience.
  • Strong experience in Generative AI and LLM-based applications.
  • Hands-on Multi-Agent Development experience (Mandatory).
  • Hands-on RAG Architecture experience (Mandatory).
  • Experience with vector databases, embeddings, semantic search, and retrieval systems.
  • Strong proficiency in Python and API development.
  • Experience building and deploying production-grade AI solutions.

Preferred Qualifications

  • BE/BTech, ME/MTech, or MS from a reputed institution.
  • Experience with enterprise AI, agentic workflows, and large-scale knowledge systems.
  • Exposure to cloud platforms, containerization, CI/CD, and AI observability.

Ideal Candidate

  • Has built real-world Multi-Agent systems, not just supporting tools or integrations.
  • Has deep expertise in RAG implementation and optimization.
  • Can independently architect, develop, and deploy enterprise GenAI solutions.

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