Gen Ai Engineer 10th Sep Thursday Video Interview Bengaluru

Gen Ai Engineer 10th Sep Thursday Video Interview Bengaluru

10 Sep
|
Tata Consultancy Services
|
Bengaluru

10 Sep

Tata Consultancy Services

Bengaluru

Must have
Generative AI production-grade GenAI solution design and deployment
Agentic AI / Multi-Agent Systems agent orchestration, tool-using agents, memory-enabled systems
Advanced RAG Architecture multi-stage retrieval, re-ranking, multi-hop retrieval and reasoning
Python (core), FastAPI, React
Vector Databases & Embedding Models hybrid search architectures
LLM Integration – LLM APIs, multi-model AI architectures
AI Platform Engineering – model serving, feature stores, GPU/infra readiness
Production AI Deployment – observability, logging, tracing, reliability engineering, graceful degradation, circuit breakers
AI Evaluation Frameworks – A/B testing, benchmarking, telemetry-based optimization
Prompt Engineering – templates, versioning, testing methodologies
Observability & Monitoring – real-time dashboards, automated alerting, incident response
Enterprise/Cloud-Native Architecture – distributed systems at scale
Cloud AI Platforms – GCP/Azure
With loops & graphs hands on

Roles & Responsibilities
Architect end-to-end AI systems including advanced RAG pipelines, multi-agent orchestration frameworks, and multi-model AI integrations built for modularity, scalability, and operational excellence.




Define enterprise standards for prompt engineering (templates, versioning, testing, evaluation) and performance optimization (model selection, caching, resource utilization, cost).
Lead deployment of AI solutions into production with comprehensive observability, reliability engineering, monitoring dashboards, automated alerting, and incident response — meeting stringent SLOs.
Design scalable data ingestion frameworks for structured, unstructured, and real-time streaming data, along with vector database architectures, hybrid search, preprocessing pipelines, and data quality/governance frameworks.
Establish quantitative AI evaluation frameworks (A/B testing, benchmarking, user feedback, telemetry) and drive continuous improvement across prompts, retrieval strategies, agent workflows, and model configurations.
Partner with platform and infrastructure teams on AI workload readiness (GPU infra, model serving, feature stores, storage, networking) and define enterprise AI platform requirements.
Ensure AI solutions adhere to enterprise governance and compliance; apply Responsible AI principles — fairness, transparency, accountability, and bias mitigation.

📌 Gen Ai Engineer 10th Sep Thursday Video Interview Bengaluru
🏢 Tata Consultancy Services
📍 Bengaluru

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