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AI / ML · Software Engineering

Software Engineer III - ML Model Delivery

JPMorgan Chase

Senior · 3+ yrsOn-site · Plano, TX, United StatesListed 1d ago
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Experience Senior · 6+ yrs (3+ years)

About the role

structured by ORI

Design and maintain the platform infrastructure that enables data scientists to build, deploy, and monitor ML models at scale. We have an exciting and rewarding opportunity for you to take your software engineering career to the next level.

What you will do

  • Design, build, and maintain platform components that support end-to-end ML model lifecycle — from development and training to deployment and monitoring
  • Applies knowledge of tools within the Software Development Life Cycle toolchain, including enterprise-authorized AI-assisted development and automation capabilities, to improve the value realized by automation
  • Leverages enterprise-authorized AI coding assist tools within the work environment to improve code quality, delivery speed, and productivity (e.g., code generation/refactoring, unit test creation, documentation), while validating outputs through peer review, automated testing, and secure coding stan
  • Develop and maintain data and feature pipelines that feed ML models in production
  • Build and manage cloud-based infrastructure on AWS (including Databricks, EMR, ECS, and S3) to support model training and serving workloads

What they are looking for

  • Formal training or certification in software engineering and 3+ years of applied experience
  • Hands-on experience building and maintaining production data or ML pipelines
  • Hands-on experience using enterprise-authorized AI-assisted software development tools within the work environment (e.g., for coding, testing, troubleshooting, or documentation) with demonstrated ability to critically evaluate and validate AI-generated outputs.
  • Understanding of responsible AI use in engineering workflows, including data sensitivity considerations, secure handling of inputs/outputs, and adherence to resiliency and security expectations.
  • Proficiency in Python and experience with ML libraries and frameworks (Pandas, NumPy, Scikit-learn, etc.)
  • Working knowledge of cloud platforms, particularly AWS, and cloud-native development patterns
  • Practical experience with infrastructure-as-code and deployment automation (Terraform preferred)
  • Ability to work independently on platform problems with moderate oversight

Nice to have

  • Experience with Databricks for model training and data pipeline development
  • Familiarity with MLOps practices — model versioning, experiment tracking, feature stores, and model monitoring
  • AWS certifications (e.g., Solutions Architect Associate)
  • Exposure to RAG architectures or GenAI/LLM integration patterns
  • Knowledge of container-based deployment (Docker, ECS, or Kubernetes)
  • Interest in AI-assisted engineering tools and automation within the SDLC
  • Experience with Big Data processing frameworks (Spark preferred)
PythonPandasNumPyScikit-learnMLOpsAIGenerative AILLMAWSDatabricksEMRECSS3TerraformDockerKubernetes
Full posting text

Design and maintain the platform infrastructure that enables data scientists to build, deploy, and monitor ML models at scale.

We have an exciting and rewarding opportunity for you to take your software engineering career to the next level. As a Software Engineer III at JPMorgan Chase within the Consumer and Community Banking - Risk Technology Portfolio team, you will be part of an agile team that builds and delivers trusted technology products in a secure, stable, and scalable way. You will take ownership of technical deliverables, contribute to design decisions, and work across cloud, data, and machine learning domains to solve real business problems. Job Responsibilities: Design, build, and maintain platform components that support end-to-end ML model lifecycle — from development and training to deployment and monitoring Applies knowledge of tools within the Software Development Life Cycle toolchain, including enterprise-authorized AI-assisted development and automation capabilities, to improve the value realized by automation Leverages enterprise-authorized AI coding assist tools within the work environment to improve code quality, delivery speed, and productivity (e.g., code generation/refactoring, unit test creation, documentation), while validating outputs through peer review, automated testing, and secure coding standards. Develop and maintain data and feature pipelines that feed ML models in production Build and manage cloud-based infrastructure on AWS (including Databricks, EMR, ECS, and S3) to support model training and serving workloads Automate model deployment, testing, and release processes within the SDLC/MLOps toolchain Support migration of legacy ML workloads to cloud-native, scalable platforms with zero downtime Monitor platform health and model serving infrastructure; identify and resolve performance and stability issues Apply AI-assisted development tools and best practices to improve code quality and delivery speed Collaborate with data scientists and model developers to understand requirements and translate them into reliable platform capabilities Contribute to a team culture of diversity, inclusion, and continuous improvement Required Qualifications, Capabilities, and Skills: Formal training or certification in software engineering and 3+ years of applied experience Hands-on experience building and maintaining production data or ML pipelines Hands-on experience using enterprise-authorized AI-assisted software development tools within the work environment (e.g., for coding, testing, troubleshooting, or documentation) with demonstrated ability to critically evaluate and validate AI-generated outputs. Understanding of responsible AI use in engineering workflows, including data sensitivity considerations, secure handling of inputs/outputs, and adherence to resiliency and security expectations. Proficiency in Python and experience with ML libraries and frameworks (Pandas, NumPy, Scikit-learn, etc.) Working knowledge of cloud platforms, particularly AWS, and cloud-native development patterns Practical experience with infrastructure-as-code and deployment automation (Terraform preferred) Ability to work independently on platform problems with moderate oversight Preferred Qualifications, Capabilities, and Skills: Experience with Databricks for model training and data pipeline development Familiarity with MLOps practices — model versioning, experiment tracking, feature stores, and model monitoring AWS certifications (e.g., Solutions Architect Associate) Exposure to RAG architectures or GenAI/LLM integration patterns Knowledge of container-based deployment (Docker, ECS, or Kubernetes) Interest in AI-assisted engineering tools and automation within the SDLC Experience with Big Data processing frameworks (Spark preferred)

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JPMorgan Chase

Financial Services

With a history tracing its roots to 1799 in New York City, JPMorganChase is one of the world's oldest, largest, and best-known financial institutions—carrying forth the innovative spirit of our heritage firms in global operations across 100 markets. We serve millions of customers and many of the world’s most prominent corporate, institutional, and government clients daily, managing assets and investments, offering business advice and strategies, and providing innovative banking solutions and services. Social Media Terms and Conditions: https://bit.ly/JPMCSocialTerms JPMorgan Chase & Co. is an

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