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Principal Applied AI ML Engineer

Your opportunity to make a real impact and shape the future of financial services is waiting for you.

Let's push the boundaries of what's possible together.

As a Principal AI/ML at JPMorgan Chase within the Corporate Sector - AI/ML & Data Platforms, you will lead a specialized technical area, driving impact across teams, technologies, and projects.

In this role, you will leverage your deep knowledge of machine learning, software engineering, and product management to spearhead multiple complex ML projects and initiatives, serving as the primary decision-maker and a catalyst for innovation and solution delivery.

You will be responsible for hiring, leading, and mentoring a team of Machine Learning and Software Engineers, focusing on best practices in ML engineering, with the goal of elevating team performance to produce high-quality, scalable ML solutions with operational excellence.

You will engage deeply in technical aspects, reviewing code, mentoring engineers, troubleshooting production ML applications, and enabling new ideas through rapid prototyping.

Your passion for parallel distributed computing, big data, cloud engineering, micro-services, automation, and operational excellence will be key.

Job Responsibilities


* Design and implement agentic AI reference architectures, including orchestration, retrieval, memory, guardrails, and evaluation harnesses.


* Write production-quality Python code (PyTorch or TensorFlow as needed) and review critical-path code


* Create reusable components for prompt management, evaluators, safety filters, connectors, embeddings pipelines, and memory stores


* Build and operate LLM-powered APIs and microservices integrated into advisor, client, and internal workflows


* Own the end-to-end ML lifecycle: experimentation, CI/CD, automated testing, monitoring, drift detection, versioning, and rollback


* Optimize inference for latency, throughput, caching, batching, model selection, and cost per inference


* Partner with data teams on structured and unstructured data pipelines, document ingestion, metadata, and access controls


* Embed responsible AI practices: safety, policy enforcement, audit logging, explainability, and monitoring


* Set engineering standards for agentic AI systems and lead design reviews


* Mentor senior engineers through code reviews and architecture discussions


* Influence roadmap and priorities through technical insight and delivery

Required Qualifications, Capabilities, and Skills:


* 10 years of experience building applied machine learning systems, with recent hands-on work in LLMs or agentic AI


* Strong Python engineering skills; experience with PyTorch or TensorFlow


* Expertise working with Vector storage systems and designing memory for Agents


* Expertise developing long running agents that run autonomously using tools, skills and human in the loop


* Proven experience deploying LLM-backed services to production (AP...




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