JO

Sr Software Engineer

Jones Lang Lasalle Jll
Bangalore5-10 LPA Posted 29 Apr 2026
FULL TIME
commercial real estate
Sdlc
Technical Documentation
Open Source
Sql
+4 more

Job Description

Key Responsibilities:

Agentic AI Architecture & Development:

  • Design and develop production-grade multi-agent systems using LangGraph, with familiarity in LangChain, CrewAI, and AutoGen.
  • Architect agent orchestration patterns, including planning, tool usage, persistent state, memory, reflection, and multi-agent coordination.
  • Develop and optimize RAG pipelines, including document processing, chunking strategies, embedding workflows, and vector database integration.
  • Build robust agent evaluation, testing, and observability frameworks.
  • Design natural language to data query solutions integrating with platforms like Databricks Genie.

LLM Integration & Optimization:

  • Integrate and manage LLM/SLM services (OpenAI, Azure OpenAI, Anthropic) with model selection, prompt engineering, and cost optimization.
  • Implement prompt engineering strategies including chain-of-thought, few-shot, and structured output techniques.
  • Implement guardrails, safety mechanisms, and content filtering for AI-generated outputs.
  • Evaluate and benchmark models for latency, accuracy, cost, and domain-specific performance.

Platform & Backend Engineering:

  • Build scalable Python backend services (FastAPI) to serve AI agent workflows.
  • Design caching, rate limiting, persistent agent state, and conversation memory strategies.
  • Develop event-driven microservices and real-time streaming for AI agent interactions.
  • Develop APIs and integration layers connecting AI agents with enterprise data sources and external services.
  • Implement distributed task processing (Celery) and event-driven autoscaling (KEDA).

Innovation & Technical Leadership:

  • Stay updated with Agentic AI advancements and evaluate emerging frameworks and techniques.
  • Lead proof-of-concept development and transition successful experiments to production.
  • Mentor engineers on AI engineering best practices, prompt engineering, and agent design patterns.
  • Contribute to technical documentation, architecture decision records, and AI solution design specifications.
  • Champion adoption of AI-powered development tools (Cursor AI, GitHub Copilot) across engineering teams.

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