Intuitive Surgical, Inc

Senior Manager, Product Management, AI Platform

Intuitive Surgical, Inc$150K — $180K *
Enterprise Technology
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • 8+ years in product management with a focus on enterprise software or AI/ML products.
  • Proven track record of translating complex business needs into clear engineering requirements.
  • Strong prioritization abilities with experience managing large backlogs from multiple stakeholders.
  • Deep understanding of Generative AI, LLMs, Text-to-SQL, and AI agents.
  • Experience with cloud services and AI/ML infrastructure management.
  • Excellent communication skills for engaging with both technical teams and business stakeholders.
  • Technical background in computer science or equivalent, with former software engineering experience preferred.

Responsibilities

  • Own and evolve the product vision and roadmap for the Enterprise AI Platform.
  • Translate enterprise AI strategy into actionable product capabilities and investments.
  • Assess emerging AI technologies to refine the platform roadmap.
  • Collaborate with cross-functional teams to gather requirements and define product features.
  • Prioritize the product backlog based on business impact and strategic alignment.
  • Enhance platform usability and measure product success through user feedback and data analytics.
  • Ensure governance and compliance standards are integrated into product features.

Benefits

  • Market-competitive compensation packages.
  • Incentives and equity options included.
  • Opportunities for professional development.
  • A collaborative work environment that encourages innovation.
Full Job Description
We are seeking an experienced AI Product leader to own the product strategy, roadmap, prioritization, and release planning for our enterprise Generative AI platform. The platform provides a secure, scalable environment for building Generative AI solutions using company-confidential data and enterprise systems. This role will operate at the intersection of business needs, AI platform strategy, and engineering execution. The successful candidate will translate a growing portfolio of feature requests and business requirements into clear platform capabilities and engineering deliverables, establish priorities based on enterprise value, and partner closely with AI Engineering, Data Science, and business-facing teams to deliver a coherent and high-impact AI platform roadmap. This is an ideal role for a product leader who combines strong enterprise product management skills with sufficient technical depth in Generative AI, data, and agentic technologies to effectively shape requirements and make informed product trade-offs. The Enterprise AI Platform The platform supports a growing set of enterprise AI capabilities, including: • Secure knowledge and unstructured data: Upload, process, chunk, index, and interact with company-confidential unstructured content using approved foundation models. • Enterprise Knowledge Bases: Create and access a growing repository of governed knowledge bases for business functions and enterprise users. • Natural language access to structured data: Enable users and AI agents to ask business questions in natural language and access governed Enterprise Data Warehouse data through Text-to-SQL capabilities. • AI agents and workflow automation: Build and deploy agents that automate or augment enterprise business workflows. • Shared AI services: Provide reusable capabilities such as translation and other common AI services. • Model choice and platform evolution: Support approved foundation models and continuously incorporate new AI capabilities as technologies and business needs evolve. Key Responsibilities 1. Product Strategy & Roadmap • Own and evolve the product vision, strategy, and roadmap for the Enterprise AI Platform. • Translate Enterprise AI strategy and business priorities into a coherent set of platform capabilities and product investments. • Continuously assess emerging AI technologies and product patterns and determine where they should influence the platform roadmap. • Balance near-term business needs with platform scalability, reuse, security, maintainability, and long-term architectural direction. 2. Requirements Translation & Product Definition • Partner with business-facing Data & Analytics teams, business stakeholders, and technical teams to understand new use cases and capability requests. • Translate business-level requirements into well-defined platform capabilities, user stories, acceptance criteria, workflows, and engineering deliverables. • Clarify the problem to be solved, target users, expected business value, data requirements, dependencies, and measures of success before committing engineering capacity. 3. Prioritization, Backlog & Release Management • Own the product backlog and establish a transparent framework for evaluating and prioritizing feature requests. • Prioritize investments based on business impact, user reach, strategic alignment, technical feasibility, risk, dependencies, and engineering effort. • Partner with AI Engineering leadership to define release plans, sequencing, milestones, and delivery commitments. • Manage competing stakeholder priorities and communicate product decisions, trade-offs, roadmap changes, and release expectations clearly. 4. Platform Adoption & Product Experience • Develop a deep understanding of how employees and business teams use the platform and identify opportunities to improve usability, discoverability, adoption, and time-to-value. • Define product success metrics and use platform telemetry, user feedback, adoption data, and business outcomes to guide roadmap decisions. • Drive consistent product experiences across knowledge bases, Text-to-SQL, agents, model access, translation, and other platform services. • Partner with enablement and support teams to improve onboarding, documentation, release communications, and user education. 5. Cross-Functional Leadership & Governance • Serve as the primary product partner to AI Engineering and Data Science teams, ensuring engineering execution remains aligned with product priorities and user needs. • Partner with AI & Data Governance, Security, Privacy, Legal, and Infrastructure teams to ensure platform capabilities meet enterprise standards. • Ensure new features incorporate appropriate security, access controls, responsible AI, data governance, observability, and operational requirements from the outset. • Build strong relationships across business functions and create mechanisms for structured intake, feedback, prioritization, and roadmap communication. • Distinguish between reusable platform capabilities and one-off use-case requirements, driving reuse and standardization wherever appropriate. Qualifications • 8+ years of product management experience, including leadership of enterprise software, data, analytics, AI/ML, cloud, or platform products; level will be calibrated based on experience and scope. • Demonstrated success owning complex product roadmaps and translating ambiguous business needs into clear, executable engineering requirements. • Experience prioritizing large backlogs across multiple stakeholders and making disciplined trade-offs among business value, user needs, technical complexity, and platform strategy. • Strong understanding of Generative AI concepts and enterprise AI patterns, including LLMs/foundation models, retrieval-augmented generation and knowledge bases, structured-data access/Text-to-SQL, and AI agents. • Experience with AI/ML infrastructure, data platforms, or cloud services (e.g., model training, model serving, feature stores, vector search, LLM infrastructure, ML pipelines). • Working knowledge of cloud platforms, APIs, enterprise data environments, identity/access controls, and modern software delivery practices. • Ability to engage credibly with AI engineers, data scientists, architects, and security teams while communicating effectively with non-technical business stakeholders. • Strong written and verbal communication, stakeholder management, and executive presentation skills. • Proven ability to operate effectively in a rapidly evolving environment where technologies, user expectations, and priorities change quickly. • Deep technical background - CS, EE, or equivalent degree strongly preferred; former software engineer experience is a significant plus. You should be comfortable going deep on system architecture, writing technical specs, and engaging credibly with world-class AI engineers. Preferred Experience • Experience managing an internal enterprise AI platform, developer platform, data platform, or other shared enterprise technology product. • Experience with enterprise GenAI implementations involving confidential or sensitive company data. • Experience with agentic AI, workflow automation, semantic layers, enterprise search/RAG, or natural-language access to structured data. • Experience establishing product operating mechanisms such as intake processes, prioritization frameworks, product councils, roadmap reviews, release planning, and adoption metrics. What Success Looks Like • A clear, business-aligned product strategy and roadmap for the Enterprise AI Platform. • A disciplined and transparent process for intake, prioritization, backlog management, and release planning. • Business requests are translated into high-quality product requirements that enable AI Engineering and Data Science teams to execute efficiently. • Engineering capacity is increasingly directed toward reusable platform capabilities that create value across multiple business functions. • Platform adoption, user experience, reliability, and measurable business value improve over time. • Business stakeholders have clear visibility into priorities, product decisions, upcoming capabilities, and release timing. Why This Role Matters As enterprise adoption of Generative AI accelerates, the number and complexity of requests for new capabilities will continue to grow. This role provides the product leadership required to turn those demands into a focused, scalable platform roadmap - ensuring that engineering investment is directed toward the capabilities that create the greatest enterprise value while maintaining the security, governance, and product discipline required for an enterprise-grade AI platform. Additional Information Due to the nature of our business and the role, please note that Intuitive and/or your customer(s) may require that you show current proof of vaccination against certain diseases including COVID-19. Details can vary by role. This position may be filled at a different job level than listed here depending on business need and/or on the selected candidate's experience, knowledge and skills. Compensation will be based primarily on the job level at which the role is filled and the candidate's qualifications, consistent with applicable law. We provide market-competitive compensation packages, inclusive of base pay, incentives, benefits, and equity. It would not be typical for someone to be hired at the top end of range for the role, as actual pay will be determined based on several factors, including experience, skills, and qualifications. The target compensation ranges are listed.

About Intuitive Surgical, Inc

Intuitive Surgical, Inc. is an American corporation that develops, manufactures, and markets robotic products designed to improve clinical outcomes of patients through minimally invasive surgery, most notably with the da Vinci Surgical System. The company is part of the NASDAQ-100 and S&P 500. Intuitive Surgical has installed more than 5,000 surgical systems worldwide, and has more than 4,000 employees.
Learn more about Intuitive Surgical, Inc
Size
9,793 employees
Market Cap
$93.6 billion
Industry
Net Income
$1 billion
Founded
1999
5 Year Trend
+16.1%
Revenue
$4.3 billion
NASDAQ

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