Product Manager, Enterprise AI

Meta

$160K — $200K *
Enterprise Technology
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • 10+ years of product management or design experience focusing on enterprise or platform products at scale.
  • Strong proficiency in utilizing AI-enabled tools for product development and deployment.
  • Ability to create coherent product strategies from diverse enterprise requirements and customer feedback.
  • Deep technical knowledge in AI infrastructure, including LLM evaluation and data orchestration.
  • Strong communication skills, with experience in conveying complex strategies clearly to varied stakeholders.

Responsibilities

  • Identify and drive key opportunities within a large product area through strategic planning and roadmap development.
  • Build consensus across teams to generate buy-in and support for product initiatives.
  • Clarify and structure ambiguous opportunities into actionable plans and objectives.
  • Critically assess optimal AI solutions and execute tradeoff analyses for portfolio-level decisions.
  • Lead product development efforts collaboratively with engineering and design teams, ensuring healthy team dynamics.
  • Oversee enterprise product readiness, including compliance and reliability metrics throughout the product lifecycle.
  • Transform workflows leveraging AI tools to increase organizational capability and efficiency.

Benefits

  • Opportunity to work at the cutting edge of AI-native product development.
  • A collaborative environment with cross-functional teams, enabling broader impact.
  • Involvement in large-scale enterprise projects with significant visibility and client outcomes.
  • Professional development in emerging AI technologies and practices.
Full Job Description
Meta is building the Agent Core platform that powers business agents for enterprise clients at scale. This role owns core platform surfaces - agentic harness and AI infra, evals, and enterprise product readiness - from 0-1 strategy through Drive to PMF with enterprise design partners. Meta Product Managers work with cross-functional teams of engineers, designers, data scientists and researchers to build products. We are looking for Product Managers who value moving quickly and lead AI-native product development at scale, with a focus on enterprise-grade agents.

Responsibilities

Is the primary driver for identifying significant near and long-term opportunities in a large Product area, and driving product mission, strategies, and roadmaps in the context of broader organizational strategies and goals.
• Generate buy-in and drive consensus across organizations.
• Bring clarity and structure to ambiguous opportunities.
• Consistently demonstrate initiative and execute with limited oversight.
• Critically evaluate when AI is (and isn't) the optimal solution at portfolio level, setting the standard for rigorous tradeoff analysis.
• Champion AI-native strategies including comprehensive evals and data strategies that enable org-wide continuous improvement.
• Drive product development with teams of engineers and designers, while maintaining team health.
• Work closely with cross-functional teams to drive product mission, define product requirements, coordinate resources from other groups (design, legal, etc.), develop roadmaps, and guide the team through key milestones.
• Reimagine workflows, responsibly using AI tools to transform team velocity and capability at organizational scale.
• Own Agent Core platform for Enterprise: agentic harness, orchestration, AI infra, and enterprise requirements prioritization by customer impact and blocking needs; define success, roadmap, and investment tradeoffs.
• Own enterprise product readiness from pilot to scaled rollout: migration and rollout plans tracked with scorecards, privacy and compliance readiness (data retention, deletion, PII redaction, tenant isolation), and closure on reliability, auth, safety, and SLAs with engineering and field teams.
• Establish evals as a first-class practice: eval harnesses, golden datasets and judges, task completion measurement driving continuous improvement.
• Lead AI infra and architecture tradeoffs with engineering: orchestration, retrieval and grounding, reasoning, latency, cost, auth.
• Lead cross-functional execution across Agent Core surfaces plus adjacent model, data, and go-to-market teams.
• Translate AI capabilities into enterprise visions that ship to real client outcomes.
• Communicate strategy and report enterprise product performance with radical clarity to clients, field teams, and leadership.

Minimum Qualifications
• Demonstrated proficiency using AI-enabled tools to build product artifacts at scale
• 10+ years of experience working collaboratively with engineering, design and user research teams
• 10+ years product management and/or Product Design
• Experience developing and championing AI-native strategies across organizations
• BA/BS in Computer Science or related field
• Seasoned Product Management experience shipping enterprise or platform products at scale
• Experience taking a 0-1 platform from strategy through enterprise adoption and full product lifecycle
• Experience turning diverse enterprise requirements and customer requests into a single coherent product strategy
• Experience with agentic harness and AI infra plus LLM evals: orchestration, tool use, golden datasets and judges, task completion measurement
• Technical depth with data and infra: analyze complex datasets, lead credible architecture tradeoff discussions on reasoning, latency, reliability, cost
• Communication and influence: radical clarity from exec to eng, AI-native builder who prototypes and ships with AI tools

Preferred Qualifications
• Shipped enterprise-grade AI infra or agentic products: harness, reliability, latency, security and auth, SLAs, readiness
• Redesigned workflows with AI tools to measurable impact on quality or task completion
• Worked with field, solutions, or partnerships teams on enterprise adoption
• Demonstrated ability to integrate AI tools to optimize/redesign workflows and drive measurable impact (e.g., efficiency gains, quality improvements)
• Experience adhering to and implementing responsible, ethical AI practices (e.g., risk assessment, bias mitigation, quality and accuracy reviews)
• Demonstrated ongoing AI skill development (e.g., prompt/context engineering, agent orchestration) and staying current with emerging AI technologies

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