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Applied AI ML Lead - LLM SUITE ENGINEERING

External
JPMorgan Chase logoJPMorgan Chase · Jersey City, NJ
Full-timeOn-site3w ago
API DesignAWSCachingKubernetesLeadershipMachine Learning
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About the role

JPMorganChase, one of the oldest financial institutions, offers innovative financial solutions to millions of consumers, small businesses and many of the world's most prominent corporate, institutional and government clients under the J.P. Morgan and Chase brands. Our history spans over 200 years and today we are a leader in investment banking, consumer and small business banking, commercial banking, financial transaction processing and asset management. We offer a competitive total rewards package including base salary determined based on the role, experience, skill set and location. Those in eligible roles may receive commission-based pay and/or discretionary incentive compensation, paid in the form of cash and/or forfeitable equity, awarded in recognition of individual achievements and contributions. We also offer a range of benefits and programs to meet employee needs, based on eligibility. These benefits include comprehensive health care coverage, on-site health and wellness centers, a retirement savings plan, backup childcare, tuition reimbursement, mental health support, financial coaching and more. Additional details about total compensation and benefits will be provided during the hiring process. We recognize that our people are our strength and the diverse talen

Additional Information

Build and scale production AI platforms that turn large language model capabilities into reliable, secure, and measurable business outcomes. You will partner across product and engineering teams to design architectures, ship reusable capabilities, and raise quality through strong engineering practices and technical leadership. As an Applied AI and Machine Learning Lead at JPMorganChase within Enterprise Technology, you will lead the architecture and hands-on implementation of scalable large language model systems and agentic AI platforms for enterprise use cases. You will design cloud-native solutions, establish evaluation and observability standards, and drive technical decisions across teams to improve reliability, cost, and developer velocity. Job responsibilities Lead the architecture and hands-on delivery of scalable, reliable agentic AI platforms for enterprise workflows Design and build production-grade AI systems including agents, skills, memory patterns, guardrails, and tool-use orchestration Architect retrieval and context-engineering approaches including embeddings, semantic search, grounding, summarization, and prompt/version management Engineer cloud-native AI services on AWS using containers and serverless patterns, event-driven messaging, and distributed data stores Optimize platform performance across latency, throughput, scalability, caching, context efficiency, and cost controls Build well-governed APIs and integrations that connect AI capabilities to enterprise platforms, tools, and business processes Establish evaluation, experimentation, regression testing, and observability frameworks to continuously improve quality and agent behavior Define engineering standards for reliability, security, and safe AI operation across the platform lifecycle Mentor senior engineers and influence engineering direction through code reviews, architecture forums, and cross-team technical leadership Required qualifications, capabilities and skills Formal training or certification on applied AI and machine learning concepts and 8+ years applied experience Experience architecting and shipping production large language model applications, including agentic workflows and tool integration patterns Strong software engineering fundamentals with ability to deliver cloud-native services using containers and serverless designs on AWS Proficiency designing distributed systems with asynchronous workflows, durable messaging, and scalable data access patterns Experience building retrieval-augmented generation solutions (embeddings, semantic search, grounding) and managing prompt lifecycle/versioning Demonstrated ability to implement evaluation and monitoring approaches for model quality, reliability, and safe behavior over time Strong API design skills, including secure integration patterns and reusable platform capability development Proven technical leadership skills, including mentoring, driving architecture decisions, and influencing cross-functional stakeholders Preferred qualifications, capabilities and skills Experience building standardized evaluation harnesses, automated regression suites, and experimentation platforms for large language model systems Hands-on experience with Kubernetes-based deployment patterns and operational excellence practices for high-availability services Experience applying privacy, data minimization, and safe AI guardrail patterns in regulated or high-risk environments Familiarity with context-efficiency optimization techniques and cost governance for large language model workloads Experience building reusable developer platforms, reference architectures, and technical standards across multiple teams


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Applied AI ML Lead - LLM SUITE ENGINEERING at JPMorgan Chase