トレンド企業

JPMorgan Chase
JPMorgan Chase

Global financial services firm

Product Manager, Machine Learning Lifecycle

職種機械学習
経験リード級
勤務地New York, NY, United States
勤務オンサイト
雇用正社員
掲載1ヶ月前
応募する

必須スキル

Machine Learning

Job Description:

The Chief Data & Analytics Office (CDAO) at JPMorgan Chase is responsible for accelerating the firm’s data and AI journey across Asset & Wealth Management, Consumer & Community Banking, Corporate & Investment Bank, and Corporate function lines of business. CDAO is at the forefront of artificial intelligence innovation, supporting a vast community of data and AI practitioners. CDAO is responsible for developing and implementing solutions that support the firm’s commercial goals by harnessing AI and ML technologies to develop new products, improve productivity, and enhance risk management effectively and responsibly.

Within CDAO, the Machine Learning Product Management team focuses on building solutions that accelerate the model development life cycle, scale deployment lifecycle, and integrate with AI Apps. The team owns the central platform and infrastructure services for the end-to-end ML workflow, including feature exploration, model prototyping, AI app visualization, and model deployment.

As a ML product manager within the Machine Learning Product Management team, you will be responsible for understanding client needs, designing solutions aligned with the team’s strategic vision, and overseeing the strategy and delivery for the product. You will work closely with cross-functional teams to deliver best-in-class products and capabilities for the firm. As a Platform, we enable our users to more quickly and more efficiently build and deploy models, with enterprise scale, reliability, and governance.

Job responsibilities

  • Define a strategic vision and roadmap for the platform that includes milestones, deliverables, resources, and timelines. Translate user and business needs into strategy and actionable requirements.
  • Drive the development of platform capabilities for streamlining the passage of models through the Model Development Lifecycle (MLOps), with the objective of reducing the time to value
  • Work with stakeholders across the various businesses (Investment Bank, Consumer Bank, etc.) and functional groups (Legal, Technology, Controls) to collect business requirements, create PRDs, and ship high quality products that solve business needs
  • Collaborate across business areas including engineering, data science, client engagement, architecture, and UX teams to deliver impactful business outcomes
  • Seamlessly integrate the DevOps experience with the MLOps experience and
  • Drive resource efficiency of centrally shared AI infrastructure and services
  • Drive the development of platform capabilities for streamlining data connectivity and consumption to AI/ML services at enterprise scale for model training and serving.
  • Own maintains, and develops a product backlog that enables development to support the overall strategic roadmap and value proposition
  • Build the framework and tracks the product's key success metrics
  • Drive adoption and create awareness of firmwide solutions through clear and concise messaging about the platform's capabilities and benefits
  • Communicate execution strategy to stakeholders, clients, and senior leaders through a well-defined roadmap and Identifies how AI can impact top-line business metrics.

Required qualifications, capabilities, and skills

  • 5+ years of experience or equivalent expertise in product management or a relevant domain area
  • Strong background in advanced analytics, machine learning, traditional AI, or generative AI applications in a business context
  • Experience with the unique challenges of deploying and maintaining AI models and expertise in Kubernetes, Containers, CI/CD, and DevOps
  • Expertise in Cloud computing architectures, including experience with cloud-based data platforms and technologies, such as Amazon Web Services, Microsoft Azure, and Google Cloud
  • Expertise in data processing and modeling throughout model development and deployment.
  • Excellent leadership and collaboration skills, with the ability to positively influence and inspire technology teams and stakeholders
  • Strong track record of owning and developing a product domain strategy and roadmap and able to balance short-term goals and long-term vision in highly complex environments
  • Proven ability to lead product life cycle activities including discovery, ideation, strategic development, requirements definition, and value management
  • Hands-on experience building or using LLM solutions and expertise on the AI lifecycle, spanning data discovery, data processing, annotation, model development, model training, model deployment, model monitoring, and feedback capture
  • Familiarity with both open-source and commercial products that support feature engineering, registration, storage, and serving and Ability to convert ambiguous needs into scalable business solutions and convey complex data concepts to both technical and non-technical stakeholders

Preferred qualifications, capabilities, and skills

  • Demonstrated prior experience working in a highly matrixed, complex organization
  • Experience in financial markets
  • Expertise in the GPU lifecycle, observability, and optimization
  • Experience with tools spanning data ingestion, data transformation, data quality, data privacy, and governance frameworks
  • Degree in Computer Science, engineering, or related field.
  • Proven track record of delivering and launching successful products at scale.
  • Experience leading tech transformation for large digital operations.

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JPMorgan Chaseについて

JPMorgan Chase

JPMorgan Chase & Co. is an American multinational banking institution headquartered in New York City and incorporated in Delaware. It is the largest bank in the United States, and the world's largest bank by market capitalization as of 2025.

300,000+

従業員数

New York City

本社所在地

$500B

企業価値

レビュー

10件のレビュー

3.8

10件のレビュー

ワークライフバランス

3.5

報酬

4.0

企業文化

3.8

キャリア

3.2

経営陣

2.8

68%

知人への推奨率

良い点

Good benefits and compensation

Supportive colleagues and environment

Flexible work arrangements

改善点

Long hours and heavy workload

Management issues and lack of direction

High stress and expectations

給与レンジ

44件のデータ

Mid/L4

Senior/L5

Mid/L4 · Applied AI ML Associate

2件のレポート

$188,500

年収総額

基本給

$145,000

ストック

-

ボーナス

-

$182,000

$195,000

面接レビュー

レビュー4件

難易度

3.0

/ 5

期間

14-28週間

内定率

50%

体験

ポジティブ 25%

普通 75%

ネガティブ 0%

面接プロセス

1

Application Review

2

HR Screen

3

Hiring Manager Interview

4

In-person/Final Interview

5

Offer

よくある質問

Behavioral/STAR

Past Experience

Culture Fit

Financial Knowledge

Case Study