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Generative AI - Vice President

JPMorgan Chase & Co.

London

On-site

GBP 100,000 - 150,000

Full time

10 days ago

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Job summary

A leading company in the financial sector seeks a Generative AI Vice President to optimize AI products and integrations within their Chief Data and Analytics Office. This role demands expertise in machine learning and collaboration across diverse technical teams to enhance data-driven decision-making practices and foster innovation. The ideal candidate will possess a PhD and significant experience in ML engineering, with strong skills in communication and team leadership.

Qualifications

  • PhD in Computer Science, Mathematics, or Statistics required.
  • Experience in ML engineering and leading ML teams.
  • Strong grasp of statistics and ML theory.

Responsibilities

  • Combine vast data assets with advanced AI technologies.
  • Lead design and delivery of production architectures with ML applications.
  • Collaborate with various teams to optimize AI products.

Skills

Statistics
Machine Learning
Communication
Collaboration
Problem Solving

Education

PhD in a quantitative discipline

Job description

We are thrilled to introduce you to our team at the Chief Data and Analytics Office (CDAO) organization. As the driving force behind the firmwide adoption of artificial intelligence (AI) across our company, our dedicated team is responsible for overseeing data use, governance, and controls around the build, adoption and maintenance of cloud infrastructure, data and AI/ML products. With a focus on both effectiveness and responsibility, we strive to push the boundaries of innovation while ensuring ethical and sustainable practices. Join us on this exciting journey as we revolutionize the way we leverage data and analytics to shape the future of our organization.

As a Generative AI Vice President within our CDAO organization, you will play a crucial role in ensuring the smooth operation and optimization of our LLM aided AI products. Our firm-wide team focuses on developing scalable LLM-based products and reusable back-end APIs. You will engage in close collaboration with cross-functional teams, including the ML Centre of Excellence, AI Research, Cloud Engineering, and others, to foster innovation and deliver solutions that yield a high Return-on-Investment (RoI). You will ensure that our APIs are built with scalability in mind, allowing them to efficiently handle a large number of requests without compromising performance. By designing APIs with a clear separation of concerns and well-defined interfaces, we enable other teams and developers to leverage our APIs to build their own ML products and solutions, fostering a culture of collaboration and efficiency.

Job Responsibilities

  • Combine vast data assets with cutting-edge AI, including LLMs and Multimodal LLMs
  • Bridge scientific research and software engineering, requiring expertise in both domains
  • Collaborate closely with cloud and SRE teams while leading the design and delivery of production architectures

Required qualifications, capabilities, and skills

  • PhD in a quantitative discipline, e.g. Computer Science, Mathematics, Statistics.
  • Experience in an individual contributor role in ML engineering.
  • Proven track record in building and leading teams of experienced ML engineers/scientists.
  • Solid understanding of the fundamentals of statistics, optimization, and ML theory, focusing on NLP and/or Computer Vision algorithms.
  • Hands-on experience in implementing distributed/multi-threaded/scalable applications (incl. frameworks such as Ray, Horovod, DeepSpeed, etc.).
  • Ability to understand and align with business expectations, and write clear and concise OKRs (Objectives and Key Results).
  • Experience as a "Responsible Owner" for ML services in enterprise environments.
  • Excellent grasp of computer science fundamentals and SDLC best practices.
  • Ability to understand business objectives and align ML problem definition.
  • Strong communication skills to effectively convey technical information and ideas at all levels, building trust with stakeholders.

Preferred qualifications, capabilities, and skills

  • Experience in designing and implementing pipelines using DAGs (e.g., Kubeflow, DVC, Ray).
  • Ability to construct batch and streaming microservices exposed as gRPC and/or GraphQL endpoints.
  • Demonstrable experience in parameter-efficient fine-tuning, model quantization, and quantization-aware fine-tuning of LLM models.
  • Hands-on knowledge of Chain-of-Thoughts, Tree-of-Thoughts, Graph-of-Thoughts prompting strategies.
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