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JPMorgan Chase & CoPosted 2 weeks ago

Applied AI ML Executive Director, Chief Data & Analytics Office

On-siteJersey City, New Jersey, United States

Full TimeSenior LevelDoctorate Or Professional DegreeEnterpriseFinancial Services

Job Summary

Architect end-to-end Generative AI and agentic AI solutions that automate complex operational workflows with measurable business outcomes. Lead the design and delivery of multi-agent systems that decompose problems, orchestrate tasks, and reliably execute end-to-end workflows at scale. Build reusable frameworks, libraries, and services that enable other AI teams to standardize patterns for model development, evaluation, deployment, and monitoring. Establish production engineering rigor across AI/ML delivery, including observability, performance tuning, incident readiness, and operational runbooks. Partner with cross-functional stakeholders to identify high-value opportunities, define success metrics, and scale solutions through adoption and change management. Mentor and develop a high-performing team of AI engineers and researchers, creating a culture of technical excellence, experimentation, and continuous learning. Drive governance for experimentation and iteration, ensuring feedback loops and evaluation practices improve model and agent behavior over time.

Required Qualifications

  • PhD in Computer Science or a related quantitative discipline with 8+ years of relevant experience, or MS in Computer Science (or related field) with 12+ years of relevant experience
  • Formal training or certification in applied AI and machine learning concepts
  • Proven track record of deploying AI/ML applications into production environments at scale, including reliability, monitoring, and lifecycle management
  • Strong understanding of AI/ML fundamentals, including experimental design, evaluation methods, and data analysis techniques
  • Experience with distributed computing patterns for model training, model serving, and state persistence in production systems
  • Demonstrated ability to design systems that incorporate user feedback loops to refine agent behavior and improve performance over time
  • Demonstrated experience building, mentoring, and leading high-performing AI/ML teams delivering complex outcomes with cross-functional partners
  • Strong communication and stakeholder management skills, including the ability to influence prioritization and align delivery to business value

Desired Qualifications

  • Experience deploying and operating models on Amazon Web Services platforms, including Amazon SageMaker and/or Amazon Bedrock
  • Experience building agentic or multi-agent systems, including orchestration patterns, tool-use design, and guardrails for safe and reliable execution
  • Experience establishing evaluation strategies for Generative AI systems (for example, quality scoring, test sets, and human-in-the-loop review)
  • Experience building reusable AI/ML platforms or shared services adopted by multiple teams across an enterprise
  • Familiarity with modern MLOps and LLMOps practices, including automated deployment, monitoring, and continuous improvement workflows

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