Padmi

Senior Technical Lead

MumbaiPosted 1 month ago
Software engineeringSeniorFull Time
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The Senior Data & MLOps Engineer will be responsible for designing, building, and operating scalable Data, MLOps, and GenAI platforms with a strong focus on Agentic AI systems , model lifecycle automation, and cloud-native infrastructure. The role requires hands-on expertise across data engineering, model deployment, observability, governance, and cloud infrastructure , ensuring enterprise-grade reliability, security, and cost efficiency. Handon to Langchain/Langraph / MS Foundry / AWS Bedrock , any one a must Key Responsibilities Data & MLOps Engineering Design and implement end-to-end MLOps pipelines covering data ingestion, feature engineering, model training, validation, deployment, monitoring, and retraining. Operationalize GenAI and LLM-based solutions , including prompt management, vector databases, embeddings, and agent workflows. Implement CI/CD pipelines for ML and GenAI workloads using industry best practices. Enable scalable experimentation, versioning, rollback, and model lifecycle management. GenAI & Agentic AI Enablement Build and operate Agentic AI frameworks supporting multi-agent orchestration, tool calling, memory management, and autonomous task execution. Implement guardrails for GenAI including security, safety, bias detection, hallucination mitigation, and policy enforcement . Optimize LLM inference performance, latency, cost, and throughput across environments. Cloud Infrastructure & Platform Engineering Architect and manage cloud-native ML platforms on Azure and/or AWS. Leverage cloud services for compute (CPU/GPU), storage, containerization, and orchestration (Kubernetes). Implement infrastructure-as-code (IaC) and platform automation to support scalable MLOps operations. Observability, Governance & FinOps Implement monitoring for model performance, data drift, concept drift, and system health . Ensure compliance with enterprise standards for data governance, security, auditability, and Responsible AI . Collaborate with FinOps teams to manage and optimize GenAI and ML platform costs . Collaboration & Delivery Work closely with Data Scientists, AI Engineers, Cloud Architects, SRE, and Security teams. Support production readiness reviews, incident resolution, and continuous improvement initiatives. Contribute to reusable accelerators, reference architectures, and best practices Location is Open PAN Birlasoft

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