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All Tech JobsThe whole board, newest first.Roles That Fit MeAnswer a few questions, see your matches.Early WindowFound before the big boards.Direct ApplyStraight to the manager, past the ATS.$230,500/ year
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Sign Up to ReadVisa is a world leader in payments technology, facilitating transactions between consumers, merchants, financial institutions and government entities across more than 200 countries and territories, dedicated to uplifting everyone, everywhere by being the best way to pay and be paid.
At Visa, you'll have the opportunity to create impact at scale — tackling meaningful challenges, growing your skills and seeing your contributions impact lives around the world.
Join Visa and do work that matters – to you, to your community, and to the world. Progress starts with you.
Position Description:
The position is responsible for designing, building, and operationalizing production AI systems across the enterprise. This is a hands-on engineering role: you set architecture and engineering standards for agentic AI, generative applications, and ML platforms; you ship reference systems yourself; and you raise the quality bar for every team that builds on AI.
This role will be responsible for building the engineering system — platforms, patterns, evals, safety controls, reliability, cost, and developer experience — so business domains can adopt AI at speed with highest attention to security, compliance, and production discipline.
What you will drive:
Enterprise AI software architecture: reference designs for LLM applications, multi-agent workflows, RAG/grounding, tool-use, and hybrid classical ML + GenAI systems.
Production-grade AI platforms: shared services for model access, retrieval, evaluation, observability, prompt/version management, feature/store integration, and deployment.
Agentic systems at scale: orchestration, memory, tool calling, human-in-the-loop controls, and safe autonomous workflows across business domains.
Quality and safety system: evaluation harnesses, red-teaming, bias/privacy checks, policy enforcement, rollback, canary, and incident response for AI services.
Developer experience for AI: SDKs, templates, CI/CD, golden paths, and inner-loop tooling so domain engineers can ship AI features without reinventing the stack.
Technical strategy and standards: model selection, cost/latency tradeoffs, data contracts, API design, and architecture review for high-risk AI systems.
Cross-domain enablement: partner with product, risk, compliance, legal, security, and domain engineering teams to take use cases from prototype to regulated production.
Part of the week in the office
Visa
Office in United States
Also hiring in United Kingdom, Atlanta, United States, New York, United States and 13 more places
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