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JPMorgan Chase & Co.

Executive Director Machine Learning Engineer-MLOps

palo alto, CA

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About this opportunity

JPMorgan Chase & Co. lists this Executive Director Machine Learning Engineer-MLOps opportunity in palo alto, California. Review the employer’s description below for duties, qualifications and application requirements.

Job description

We are looking for a Senior MLOps engineer to work closely with Data Scientists to build and deploy ML models on a modern MLOps stack.

As an Executive Director Machine Learning Engineer on the Recommendation Engine team, you'll implement fine-tuning and reinforcement learning algorithms on large compute clusters, build and run real-time and batch model serving systems, hyper-parameter tuning at scale, model monitoring, production validation and other activities vital for model development, testing and deployment in a well-managed, controlled environment.

Our product, Personalization and Insights, builds and supports high throughput, low latency applications which leverage state of the art machine learning architectures, and which are deployed in AWS. These applications power personalized experiences across Chase Consumer & Community Banking channels, to help weave a user experience that includes traditional banking services with other services in the Travel, Merchant Offer Shopping, and Dining spaces.

Job responsibilities

Build, deploy, and maintain robust pipelines for distributed training on GPU-enabled clusters to support scalable machine learning workflows.

Develop and manage high-volume real-time and batch inference systems, ensuring optimal performance and reliability.

Implement quantization techniques and deploy open-weight large language models (LLMs) on modern serving stacks such as vLLM on Ray to maximize efficiency and resource utilization.

Oversee the management and optimization of vector databases to support advanced AI and machine learning applications.

Establish and maintain comprehensive monitoring and observability pipelines to ensure system health, performance, and rapid issue resolution.

Collaborate with cross-functional teams to integrate new technologies and continuously improve existing infrastructure.

Partner with product, architecture, and other engineering teams to define scalable and performant technical solutions.

Required qualifications, capabilities, and skills

BS in Computer Science or related Engineering field with 10+ years of experience Or MS degree in Computer Science or related Engineering field with 6+ years experience.

Solid knowledge and extensive experience in Python or in cloud computing and AWS.

Understanding of quantization techniques such as PTQ, AWQ etc. used to quantize LLMs for accelerating inference on specific GPU architectures

Solid understanding of Transformer models and challenges involved in serving large transformer-based models

Solid understanding of ML training, especially latest reinforcement learning algorithms such as GRPO and DAPO

Experience in systems engineering fundamentals: caching, CUDA, autoscaling, high throughput, low latency, x-region resilient applications

Deep knowledge and passion for data science fundamentals, training and deploying models

Experience in monitoring and observability tools to monitor model input/output and features stats

Solid grounding in engineering fundamentals and analytical mindset

Preferred qualifications, capabilities, and skills

Experience with recommendation and personalization systems is a plus.

CUDA experience is a big plus

Solid fundamentals and experience in containers (docker ecosystem), container orchestration systems (Kubernetes, ECS)

Experience with Ray, vLLM, RL libraries such as verl/trl

Good knowledge of Databases

(i) This position is subject to Section 19 of the Federal Deposit Insurance Act. As such, an employment offer for this position is contingent on JPMorganChase's review of criminal conviction history, including pretrial diversions or program entries.

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Worksite address

palo alto, CA, 94306, US

Who can apply

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