Hiring : Python Developer – GenAI & Agentic AI | 5–7 Years | Bangalore / Remote | Immediate Joiners Location : Bangalore / Remote
Experience : 5–7 Years
Budget : 1.6 – 1.7 LPM
Notice Period : Immediate (Bench resources only)
Mode : Remote / Hybrid
⚠️ Note : Candidates must have ESI / Medical Insurance, EPFO Registration, PT Registration, Labour Welfare Fund Registration, Shop Act Registration, and GST Registration .
Only profiles with these compliance documents will be considered.
✨ About the Role We are looking for an experienced Python Developer specialized in Generative AI (GenAI) and Agentic AI . The ideal candidate will be proficient in LLM-based application development, RAG pipelines, AI agents, LangChain / LangGraph, and cloud AI services. You will design and deploy scalable AI-driven solutions used across enterprise environments.
Key Responsibilities Develop GenAI Applications : Build and optimize AI solutions using Python, LangChain, LangGraph, MCP, and AgentOps.
LLM Integration : Work with Azure AI, AWS Bedrock, OpenAI, Anthropic, and other LLM providers for text, multimodal, and agent workflows.
RAG Architecture : Implement Retrieval-Augmented Generation pipelines with vector DBs (Pinecone, Chroma, Weaviate, FAISS).
Fine-tuning & MLOps : Fine-tune LLMs for domain tasks; build CI / CD pipelines for ML models using MLOps tools and best practices.
Agentic AI Systems : Design multi-agent workflows with orchestration, memory, planning, and error-handling capabilities.
Cloud Deployment : Deploy models / applications on AWS (Lambda, EC2, S3, Bedrock, SageMaker) and Azure AI.
Performance & Cost Optimization : Optimize model response time, scalability, and cloud compute cost.
Cross-functional Collaboration : Work closely with Data Science, DevOps, and Product teams to deliver robust AI solutions.
Required Skills & Qualifications Strong proficiency in Python and backend development.
Hands-on experience with LangChain, LangGraph, MCP, AgentOps .
Strong understanding of RAG pipelines and vector DBs (Pinecone, Chroma, Weaviate, FAISS).
Experience in LLM fine-tuning and prompt engineering.
Solid knowledge of MLOps (CI / CD, monitoring, model deployment).
Experience using cloud AI platforms : AWS Bedrock, Azure AI, SageMaker, GCP Vertex AI (preferred).
Understanding of Agentic AI (multi-agent orchestration, planning, memory).
Familiarity with Docker, Kubernetes, Terraform, GitOps .
Strong analytical, debugging, and problem-solving skills.
⭐ Preferred Qualifications Experience with multimodal models (text, image, audio).
Exposure to enterprise AI compliance and security frameworks .
Knowledge of ISO / IEC AI governance standards .
Contributions to open-source AI / ML projects .
How to Apply If your profile matches and you meet the compliance requirements, please share your resume at [Add Email / Apply Link] .
Immediate joiners are highly preferred.
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