Senior
Build what’s next in applied AI at JPMorganChase - where your work shapes how teams use intelligent systems at scale. You’ll lead hands-on engineering for agentic and GenAI capabilities that power the LLM Suite platform. This role offers a mix of deep technical problem-solving, architecture ownership, and collaboration with talented builders. If you enjoy turning ambiguity into reliable production systems, you’ll thrive here. Join a team that values craft, security, and learning.
As an Applied AI ML Lead in LLM Suite Engineering, you will design and deliver production-grade AI/ML and agentic solutions that integrate seamlessly with existing systems. You will own technical direction across architecture, implementation, and operational stability, with a strong focus on secure, high-quality software. You will partner with peers across engineering to identify patterns and improve standards, reliability, and scalability. You will help evolve the platform using modern public cloud services and agentic frameworks. You will contribute to a collaborative culture through communities of practice and emerging-technology events. You will explore and operationalize emerging patterns such as agent-to-agent communication, model context protocols, and agentic orchestration, turning early-stage concepts into scalable, production-ready capabilities.
Job Responsibilities
Design, develop, and troubleshoot software solutions using creative approaches to solve complex technical challenges
Write secure, high-quality production code and maintain algorithms that integrate with existing systems
Create architecture and design artifacts for complex applications, ensuring design constraints are met through delivery
Build AI/ML solutions and agentic systems for the LLM Suite platform using public cloud architecture (Azure, AWS) and modern agentic frameworks
Implement GenAI services leveraging Azure OpenAI models and AWS Bedrock
Identify hidden problems and patterns in data proactively to improve coding standards and system architecture
Participate in software engineering communities of practice and events focused on emerging technologies
Required Qualifications, Capabilities, and Skills
Computer science degree or equivalent practical experience
Hands-on experience with system design, application development, testing, and operational stability
Proficiency in Python (FastAPI)
Experience building microservices and APIs
Experience with elastic compute, NoSQL databases, and messaging queues
Strong understanding of the Software Development Life Cycle
Solid grasp of CI/CD, application resiliency, and security
Preferred Qualifications, Capabilities, and Skills
Experience implementing GenAI services leveraging Azure OpenAI models and AWS Bedrock
Proficiency working with large language models and building agents with LangGraph
Experience developing, debugging, and maintaining code in a large corporate environment using modern programming and database querying languages
Experience with containerization
Knowledge of agent-to-agent (A2A) communication concepts
Familiarity with Model Context Protocol (MCP)
Experience with agentic orchestrators, personal AI assistants, or AI skills development
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