Applied AI ML Director

JPMorganChaseSeattle, WA

About The Position

Are you passionate about harnessing the power of artificial intelligence and machine learning to solve real-world challenges? At JPMorganChase, we’re transforming the way payments work in the Commercial & Investment Bank by leveraging classical and cutting-edge AI/ML technologies. As an Applied AI ML Director in the Commercial & Investment Bank at JPMorganChase, you’ll play a pivotal role in strategizing and building innovative solutions that enhance trust, safety, and operational efficiency for one of the world’s leading financial institutions. You will own solutions end-to-end, from problem framing and data strategy to production deployment and measurement. You will remain hands-on while setting technical direction and partnering across product, engineering, data, risk, and compliance stakeholders.

Requirements

  • PhD in applied artificial intelligence, machine learning concepts or similar with 5+ years of experience or MS in applied artificial intelligence, machine learning concepts or similar with 8+ years experince.
  • Experience building and delivering applied machine learning or natural language processing solutions with measurable outcomes in production.
  • Strong programming skills in Python and experience using modern machine learning frameworks such as PyTorch or TensorFlow.
  • Hands-on experience with document extraction and natural language processing techniques including text classification and information extraction.
  • Experience designing data-driven solutions using SQL and distributed processing tools such as Spark or equivalent.
  • Experience deploying and operating machine learning services or pipelines in a cloud environment such as Amazon Web Services (or equivalent).
  • Demonstrated ability to translate ambiguous business problems into structured machine learning plans, including data strategy, evaluation, rollout, and operationalization.
  • Strong communication and collaboration skills, including the ability to explain technical tradeoffs to technical and non-technical partners.

Nice To Haves

  • Experience with optical character recognition and document understanding workflows for scanned or semi-structured documents.
  • Experience with modern natural language processing architectures such as transformer-based models and techniques for optimization and efficient inference.
  • Experience with machine learning operations practices and tooling, including model registries, continuous integration and delivery for machine learning, and observability.
  • Experience with real-time or event-driven architectures supporting low-latency inference and feature generation.
  • Experience applying document extraction or natural language processing in payments, financial services, or regulated environments.

Responsibilities

  • Demonstrated expertise in several areas from Graph Networks, Neural Networks, NLP, Vision, Classical ML and other technologies
  • Domain expertise to develop and improve Trust & Safety problems in payment processing (e.g. Fraud Prevention, Authorization Optimization, Abuse).
  • Own end-to-end delivery of problems in Payments (Trust & Safety or otherwise) solutions, from opportunity sizing and requirements through production rollout and iteration.
  • Demonstrated ability to envision and develop AI/ML strategy that has platform wide impact within payments Organization.
  • Define evaluation strategies and success metrics, including offline validation, error analysis, robustness testing, and controlled online measurement where appropriate.
  • Establish model lifecycle practices including reproducibility, testing, monitoring, drift detection, and incident response to sustain reliable production performance.
  • Partner with risk and compliance stakeholders to ensure appropriate documentation, controls, explainability expectations, and audit-ready processes.
  • Drive technical decisions through design reviews, code and model reviews, and pragmatic standards that raise quality and delivery velocity.
  • Communicate tradeoffs and recommendations to senior stakeholders, translating model behavior into decision-ready business impact.
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