Jobs · OTHR · New Jersey

Applied AI ML Lead - Generative AI and Semantic Modeling

JPMorganChase · Jersey City, NJ · 2 days ago
On-siteOTHRFull-time

Job Responsibilities

Develop generative AI, agent-based AI, and large language model solutions in Python from proof of concept through production deployment
Lead semantic modeling strategy, including ontology standards, governance, and lifecycle management aligned to enterprise needs
Build and govern a unified semantic layer that enables trusted analytics across business intelligence, machine learning, and transactional systems
Enable intelligent workflows and AI agents using ontology-driven context, semantic reasoning, and orchestration methods
Implement responsible AI practices, model risk controls, and governance aligned to regulated environments and internal standards
Communicate complex technical concepts clearly to technical and non-technical stakeholders, including senior leaders, to align delivery to business objectives

Required Qualifications, Capabilities And Skills

  • Master's degree in a data science-related discipline and 8 years of industry experience, or a PhD in a data science-related discipline
  • Hands-on experience developing and deploying machine learning and generative AI solutions using Python
  • Demonstrated ability to write and maintain production-quality code, including reliability, performance, and maintainability considerations
  • Experience with continuous integration practices and unit test development to support quality delivery
  • Experience building and managing data pipelines and processing workflows that support analytical and machine learning use cases
  • Strong written and verbal communication skills, including the ability to translate technical decisions into business impact
  • Demonstrated scientific thinking and structured problem-solving skills for ambiguous, data-driven challenges
  • Ability to work independently while collaborating effectively across product, engineering, and business stakeholders

Preferred Qualifications, Capabilities And Skills

  • Experience building large language model applications that use context engineering to improve response quality and reliability
  • Background in semantic modeling, ontology design, and governance practices in enterprise environments
  • Experience designing semantic integration patterns across data contracts and application programming interfaces in distributed systems
  • Experience implementing monitoring and evaluation approaches for machine learning and generative AI in production
  • Experience mentoring data scientists and engineers and promoting modern machine learning engineering best practices

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