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Applied AI & ML Lead - Markets Operations

Job in Jersey City, Hudson County, New Jersey, 07390, USA
Listing for: JPMorgan Chase & Co.
Full Time position
Listed on 2026-06-24
Job specializations:
  • IT/Tech
    Machine Learning/ ML Engineer, AI Engineer (Applied/Software), Artificial Intelligence
Salary/Wage Range or Industry Benchmark: 140000 - 180000 USD Yearly USD 140000.00 180000.00 YEAR
Job Description & How to Apply Below

Bring your expertise in applied artificial intelligence and machine learning to a team improving how Markets Operations runs  will partner across operations, product, engineering, and data to deliver production-grade solutions with measurable impact. In a collaborative environment, you will shape strategy, mentor talent, and build durable capabilities designed for reliability, control, and real-world adoption.

Applied Artificial Intelligence and Machine Learning Lead at JPMorgan

Chase within Markets Operations in the Commercial & Investment Bank
will drive the strategy, design, and delivery of solutions that improve operational efficiency, resilience, and control outcomes. You will lead a team of scientists and engineers and collaborate with senior stakeholders to prioritize high-impact opportunities and deliver solutions that scale. You will set technical direction, strengthen engineering and governance practices, and translate complex concepts into clear, outcome-focused results.

Job Responsibilities
  • Lead the end-to-end delivery of machine learning and generative AI solutions that measurably improve Markets Operations outcomes
  • Set technical direction and execution strategy across model development, deployment, and adoption aligned to business priorities
  • Oversee the architecture and production deployment of AI applications, including agent-based and workflow-automation solutions
  • Manage, coach, and develop a team of scientists and engineers, fostering a collaborative and inclusive culture of continuous learning
  • Establish and enforce best practices for model monitoring, evaluation, and performance optimization in production environments
  • Partner with business, operations, and technology leaders to shape problem statements, success metrics, and delivery roadmaps
  • Guide analysis of large, complex datasets to identify drivers, risks, and automation opportunities
  • Ensure solutions are engineered for reliability, scalability, and maintainability, with strong operational readiness
  • Communicate technical approaches, decisions, and results through clear documentation and cross-functional forums
Required Qualifications , Capabilities, and Skills
  • Formal training or certification on applied artificial intelligence and machine learning concepts and 5+ years applied experience
  • Bachelor’s or Master’s degree in computer science, data science, artificial intelligence, or a related field (or equivalent experience)
  • Demonstrated leadership delivering AI/ML initiatives from concept through production, including team and stakeholder management
  • Strong applied experience in machine learning, including feature engineering, model development, and statistical analysis on large datasets
  • Hands‑on proficiency in Python and common machine learning libraries (for example, scikit‑learn, Tensor Flow, or PyTorch)
  • Proven experience deploying, operating, and maintaining production machine learning systems, including incident and performance ownership
  • Working knowledge of machine learning operations practices (machine learning lifecycle management, automation, and reproducibility)
  • Experience building and deploying generative AI applications and evaluating large language model outputs for quality and risk
  • Strong communication skills, including the ability to translate technical concepts for senior stakeholders and non‑technical partners
Preferred Qualifications , Capabilities, and Skills
  • Doctorate in a quantitative field or equivalent advanced applied research experience
  • Experience delivering AI/ML solutions in financial services, capital markets, or operations‑focused environments
  • Experience working in highly regulated environments with strong model risk, governance, or control expectations
  • Experience designing scalable system architectures for AI products and platforms across multiple stakeholder groups
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