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Applied AI ML Senior Associate

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Join a world-class data science team at JPMorgan Chase and help shape the future of our Chief Administrative Office.

As a Data Scientist Senior Associate in the Chief Data & Analytics Office, you will lead the development and deployment of innovative AI and machine learning solutions. You will collaborate with cross-functional teams to address complex business challenges, drive adoption of modern ML practices, and ensure responsible AI governance. You will have the opportunity to work withstate-of-the-arttechnologies and contribute to a culture of technical excellence and continuous learning. We value curiosity, technical excellence, and a passion for solving complex problems. Ifyou'reready to accelerate your career and drive meaningful change, we want to hear from you.

Job responsibilities:

  • Lead the hands-on design, development, and deployment of advanced AI, GenAI, and large language model solutions.
  • Serve as a subject matter expert on a wide range of machine learning techniques and optimizations.
  • Collaborate with product, engineering, and business teams to deliver scalable, production-ready AI systems.
  • Conduct experiments using the latest ML technologies, analyze results, and tune models foroptimalperformance.
  • Own end-to-end code development in Python for both proof-of-concept and production-ready solutions.
  • Integrate generative AI within the ML platform usingstate-of-the-arttechniques.
  • Drive adoption of modern ML infrastructure, tools, and best practices.
  • Optimizesystem accuracy and performance byidentifyingand resolving inefficiencies.
  • Communicate technical concepts and results to both technical and business stakeholders.
  • Ensure responsible AI practices, model governance, and compliance with regulatory standards.
  • Mentor and guide other AI engineers and scientists, fostering a culture of continuous learning.

Required qualifications, capabilities, and skills:

  • Master's or PhD in Computer Science, Engineering, Mathematics, or a related quantitative field.
  • Minimum 6 years of hands-on experience in applied machine learning, including generative AI, large language models, or foundation models.
  • Experience programming in Python experience with ML frameworks such asPyTorchor TensorFlow.
  • Proven experience designing, training, and deploying large-scale ML/AI models in production environments.
  • Deep understanding of prompt engineering, agentic workflows, and orchestration frameworks.
  • Experience with cloud platforms (AWS, Azure, GCP) and distributed systems (Kubernetes, Ray,Slurm).
  • Solid grasp ofMLOpstools and practices (MLflow, model monitoring, CI/CD for ML).
  • Strong communicationskills with the ability to explain complex technical concepts to diverse audiences.
  • Demonstrated leadership in working effectively with engineers, product managers, and other ML practitioners.
  • Experience applying data science and ML techniques to solve business problems and passion for detail, follow-through, and technical excellence.

Preferred qualifications, capabilities, and skills:

  • Experience with high-performance computing and GPU infrastructure (e.g., NVIDIA DCGM, Triton Inference).
  • Familiarity with big data processing tools and cloud data services.
  • Advanced knowledge in reinforcement learning, meta learning, or related advanced ML areas.
  • Experience with search/ranking, recommender systems, or graph techniques.
  • Background in financial services or regulated industries.
  • Experience withbuilding and deploying ML models on cloud platforms such as AWSSagemaker, EKS, etc.
  • Published research or contributions to open-source GenAI/LLM projects.

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