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Senior Product Manager

Bellevue, WAHybridFull-time

AI Summary

Senior Product Manager owning end-to-end product strategy, roadmap, and execution for AI agent orchestration/governance and enterprise semantic data layers in regulated industries.

About this role

Member of Technical Staff - Engineering [Senior Product Manager]

Bellevue | Hybrid

NTT DATA AIVista, Inc., a wholly owned subsidiary of NTT DATA, is based in Silicon Valley. We develop AI products that operationalize AI across enterprises operating in complex regulatory environments. We partner with other NTT companies (NTT DATA Inc, NTT DATA Japan, NTT Docomo) to ensure successful deployment to NTT clients. Our clients benefit from AIVista’s deep product AI expertise combined with the industry domain and systems integration experience of NTT DATA.

Role Description

AIVista is a newly formed, product-focused company that combines deep expertise in AI science and engineering with the domain knowledge and enterprise reach of NTT DATA. The goal is straightforward: use agentic AI to solve hard, structural business problems in regulated industries, primarily insurance and financial services — and in doing so, genuinely transform how those industries operate. These sectors carry real complexity: dense regulatory requirements, legacy systems, high-stakes decisions, and meaningful accountability when things go wrong. That is precisely the kind of problem the platform is built to address. This role has meaningful scope. You will own two foundational platform capabilities end-to-end: how AI agents are orchestrated and governed at runtime, and how enterprise knowledge is structured to make those agents accurate and context-aware.

Ownership here means the full arc, defining requirements, driving engineering execution, working through customer feedback, and iterating toward something that works in production. There is no handoff point where this becomes someone else’s problem. The team you will join has been building AI products for over a decade. Members come from both the Silicon Valley startup world and from hyperscalers, having built production AI systems well before large language models made the field mainstream. We have scientists who have done research that has shaped how generative AI is applied in production, engineers who have built some of the most widely used ML platforms, and product managers with experience shipping enterprise applications at scale.

The problems we are working on are not solved. How do you enforce governance over AI agents operating autonomously in regulated workflows? How do you model enterprise knowledge in a way that survives messy, inconsistent source data? How do you deploy all of this in environments with strict data residency and air-gap requirements? These questions sit at the edge of what the industry knows how to do, and answering them well is what the platform is built around.

Core Responsibilities

· Own the product vision, roadmap, and success metrics for the AI agent orchestration and governance layer and the enterprise semantic data layer, maintaining clarity on scope, dependencies, priorities, and trade-offs across all active workstreams.

· Translate ambiguous enterprise customer problems into crisp, actionable product requirements; PRDs, user stories, and acceptance criteria, that engineering teams can execute with confidence and minimal re-work.

· Drive the full product lifecycle from discovery through GA: customer research, problem framing, specification, build oversight, QA alignment, launch readiness, and post-release iteration.

· Serve as the primary product interface to engineering leads for both platform components, resolving scope ambiguities, making build-vs-buy-vs-configure decisions, and unblocking delivery without sacrificing quality.

· Deeply engage with AI/ML architecture, API contracts, data pipeline design, and agent runtime behavior to identify risks and opportunities invisible to non-technical PMs.

· Lead structured customer discovery with enterprise stakeholders across insurance and financial services clients, surfacing requirements, validating priorities, and establishing product-market fit for each platform capability.

· Define and maintain product governance artifacts: capability maps, roadmap rationale documents, release notes, and decision logs that create organizational memory and enable asynchronous alignment.

· Drive compliance and regulatory readiness into the product: ensure agent governance capabilities map to EU AI Act, NAIC Model AI Bulletin, NIST AI RMF, SOC 2, and ISO/IEC 42001 requirements from the design stage, not as an afterthought.

· Partner with executive leadership to shape quarterly planning cycles, investment prioritization, and go-to-market strategy for core platform capabilities.

· Represent AIVista in client-facing product discussions and architecture reviews; hold credibility with enterprise technical buyers and C-suite stakeholders.

Qualifications

· 7+ years of product management experience shipping AI/ML platform products, developer infrastructure, or enterprise data products at a product-focused technology company.

· Bachelor’s degree in Computer Science, Engineering, or a related technical field, or equivalent hands-on technical experience.

· Demonstrated ability to define product strategy and drive execution for technically complex, multi-workstream initiatives — from ambiguous problem definition through production release.

· Deep technical fluency in AI/ML systems: sufficient depth to understand LLM orchestration patterns, RAG pipeline architecture, semantic data modeling, and agent runtime design, and to challenge technical assumptions independently.

· Track record of writing high-quality product specifications (PRDs, functional specs, API contracts) that engineering teams can execute without constant clarification.

· Experience driving alignment across engineering, data science, legal/compliance, and enterprise client organizations without direct authority.

· Strong written communication: capable of producing product strategy memos, capability narratives, and customer-facing documentation that are clear, concise, and credible to both technical and non-technical audiences.

Preferred Qualifications

· MBA or Master’s degree in Computer Science, Systems Engineering, or a related field.

· Hands-on experience with agentic AI infrastructure: LLM orchestration frameworks

· (LangGraph, LangChain, AutoGen), RAG pipeline design, model governance, or intelligent document processing in production environments.

· Familiarity with enterprise AI regulatory frameworks: EU AI Act, NAIC Model AI Bulletin,

· NIST AI RMF, SOC 2, or ISO/IEC 42001, and experience building compliance requirements into product design rather than retrofitting them.

· Track record of translating complex technical capabilities into products that feel simple and inevitable to enterprise buyers, packaging sophisticated AI infrastructure into use cases that drive adoption and business outcomes.

· Experience with Spec-Driven Development (SDD), OpenTelemetry-based observability, or model governance frameworks in production AI systems.

· Client-facing product experience at enterprise scale (Fortune 500 or equivalent), with comfort owning product conversations at the CTO or CIO level.

Compensation & Benefits

The estimated annual base salary range for this role is $250,000 - $325,000USD. Total compensation may also include variable pay in the form of an annual target bonus and other cash incentives up to 100% of base. Actual compensation will depend on education, experience, business needs, and market conditions. This range may be modified in the future.

Benefits

Medical, dental, and vision insurance

401(k) plan

Significant Company HSA contribution

Paid holidays and flexible PTO

NTT DATA AIVista is an equal opportunity employer. We do not discriminate based on race, religion, color, national origin, ancestry, sex, gender identity or expression, sexual orientation, age, disability, genetic information, marital status, military or veteran status, reproductive health decisions, or any other characteristic protected under applicable federal, state, or local law.

Skills

Agent RuntimeAI/MLAutoGenCompliance: EU AI Act, NIST AI RMF, SOC 2, ISO/IEC 42001LangChainLangGraphLLM OrchestrationOpenTelemetryRAGSemantic Data Modeling

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