AI/LLM Product Manager- Senior Associate

JPMorgan Chase & Co.New York, NY
$128,250 - $195,000

About The Position

Join us in building the next generation of AI and autonomous agents to solve mission-critical operational and banking productivity challenges at the scale of the world’s largest bank. In this role, you’ll own AI use cases end-to-end—from discovery and problem framing through requirements, delivery, and long-term reliability. You’ll design, build, and extend production-grade agentic systems, partnering closely with data science, engineering, and business stakeholders. Success means more than shipping: you’ll be accountable for performance, safety, and day-to-day behavior once real bankers rely on these capabilities.

Requirements

  • 3–6+ years in product management, data products, or technology delivery, or equivalent expertise.
  • Have shipped an LLM-powered, autonomous, or agentic system to production
  • Demonstrated experience designing and running evals for such systems as needed to meet product driven success criteria. You reason about probabilistic behavior and drift, not deterministic pass or fail.
  • Strong understanding of the AI/ML lifecycle (training, validation, deployment, monitoring)
  • Understanding of production-grade data judgment: what good data looks like, where it degrades, pipeline stability, and how quality propagates into behavior.
  • Experience building net-new infrastructure and integrations, with the ability to hold your own on architecture, APIs, and data pipelines.
  • Experience working with cross-functional teams (Tech, Data Science, Business), with strong communication and stakeholder-management skills.
  • Comfort operating inside a large, regulated institution where governance and controls are design inputs, not obstacles.
  • Ability to ship AI-enabled products and lead complex programs in large, matrixed organizations.

Nice To Haves

  • Previous experience in commercial and investment banking a plus

Responsibilities

  • Define product requirements, features, and roadmap components for AI use cases, translating business problems into agentic solutions and workflows.
  • Lead end-to-end delivery from pilot through production, owning what the agent does, what it is permitted to do, how it acts under uncertainty, and where autonomy boundaries sit.
  • Build and extend the agents and the net-new infrastructure they depend on: the services, APIs, and integrations that surround the model and make the system work.
  • Drive model validation, performance monitoring, drift detection, and iterative improvement, keeping behavior correct as you ship and extend.
  • Manage backlog prioritization, sprint planning, and delivery tracking.
  • Partner with stakeholders to identify opportunities for AI-driven efficiency or revenue growth, and run user feedback sessions, folding insights into product enhancements.
  • Define success metrics and measure business impact, including reliability, adoption, and reuse.
  • Ensure alignment with data governance, compliance, and risk standards, working across Engineering, Data Science, Controls, and the business.

Benefits

  • comprehensive health care coverage
  • on-site health and wellness centers
  • a retirement savings plan
  • backup childcare
  • tuition reimbursement
  • mental health support
  • financial coaching
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