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Senior AI Engineer

Paytm

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What AI roles keep asking for: LLMs (30%), Python (28%), AWS (21%), Generative AI (18%), Machine learning (16%), Observability (15%), RAG (13%) — counted across their open postings here.

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  1. Why do you want to join Paytm?
  2. What is your experience with Azure? Tell me one thing you learned the hard way.
  3. How would you explain your model's result to someone who is not technical?
  4. What would you check first if a model's accuracy dropped after going live?
  5. When would you not use machine learning for a problem?

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About the role There’s a wide gap between an agent that works in a demo and one that works across millions of live transactions. Closing it is the job. You’ll embed with the teams and customers who depend on AI — risk, fraud, collections, payments, support, developer experience — and design, build, and ship agentic systems into their production environments. You’ll also help build the platform underneath: Paytm’s AI inference platform (Pi) and the agentic runtime, orchestration, and tooling that lets agents reason, plan, use tools, and run multi-step workflows safely. What you’ll do: Embed & deploy Tackle greenfield problems alongside internal teams and customers — scope ambiguous needs and build agents from scratch that fit how they actually work. Own deployments end-to-end: discovery, build, integration, activation, and the tuning that earns trust and adoption. Lead pilots and demos, drive adoption, and clear blockers before they stall a rollout. Build agentic systems Architect agentic systems — reasoning, planning, tool use, memory, multi-agent coordination — that run real workflows with guardrails. Build safe tool-use infrastructure across APIs, databases, and services, with permissioning, sandboxing, and human-in-the-loop. Ship SDKs, patterns, and reusable blueprints so internal teams build and deploy agents fast. Make it reliable Design and run rigorous evals: measure quality, catch regressions, and feed results back into the system. Build observability, tracing, and guardrails that prove agents are safe and keep them safe as models and data drift. Own the multi-model inference your agents depend on (text, voice, code, vision) — latency, throughput, and cost. Lead Set technical direction and standards for agentic systems; mentor engineers and partner with ML, product, and security. What you’ll bring: 5+ years in software engineering, with 3+ in AI systems or LLM applications, and production systems shipped end-to-end. Strong grasp of LLM agent architectures (ReAct, RAG, tool use, multi-agent) and hands-on agentic orchestration and evaluation. Proficiency in Python across a broad stack — pipeline, agent, service, and instrumentation. Production experience on AWS and Azure with containerized deployments (Docker, Kubernetes). Strong customer and stakeholder instincts; able to impose structure on ambiguity and push back when needed. A bias toward shipping and comfort operating without a clean spec. Solid understanding of agentic security risks (prompt injection, privilege escalation, data leakage). Strong written and verbal communication. Nice to have: Agentic systems in regulated industries (fintech, payments, credit, healthcare). Cloud AI/ML services (AWS SageMaker / Bedrock, Azure ML / Azure OpenAI); multi-cloud or hybrid. MCP or agent communication standards; agent evaluation and observability tooling. Model serving (vLLM, TensorRT-LLM, Triton), fine-tuning, quantization, or LoRA. Workflow orchestration (Temporal, Airflow, Prefect) for AI workloads; voice / multimodal / edge inference. Testing and verification for non-deterministic AI systems.

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Listed on lever · posted 2026-06-25. ApplySarthi collects openings and links to application pages; the role is advertised by Paytm, not by us.