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Staff Machine Learning Engineer, Financial Connections

Stripe

New YorkFull Time
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Staff Machine Learning Engineer, Financial Connections at Stripe is a full time role based in New York. It was published on 25 August 2026 and was open at last check.

Staff Machine Learning Engineer, Financial Connections at Stripe — key details
RoleStaff Machine Learning Engineer, Financial Connections
CompanyStripe
LocationNew York
Employment typeFull Time
Published25 August 2026
StatusOpen at last check

Who we are

About the team

Financial Connections is Stripe's open banking platform, enabling businesses to securely access consumer-permissioned financial data. Our platform connects to thousands of financial institutions, powering use cases from account verification to risk assessment to personal financial management. Across the Financial Connections Engineering org, we focus on delivering high-quality, enriched bank data at scale — building the ML systems that transform raw financial data into actionable signals for both internal Stripe teams and external merchants.

Our ML work spans transaction categorization, risk scoring, data enrichment, and the development of intelligent systems that improve data quality across our network. We operate at the intersection of fintech infrastructure and applied machine learning, solving problems that directly impact Stripe's ability to serve millions of businesses and consumers.

What you'll do

We're looking for machine learning engineers who want to build intelligent systems that provide financial data at scale. You'll play a key role in designing, training, and deploying ML models that improve the quality, accuracy, and usefulness of financial data across Stripe's ecosystem.

Responsibilities

  • Design, build, train, evaluate, deploy, and own ML models in production that improve transaction categorization, risk scoring, and data enrichment across Financial Connections
  • Design and build large-scale ML systems that operate on diverse financial data from thousands of institutions
  • Experiment and iterate on ML models (using tools such as PyTorch, TensorFlow, XGBoost) to achieve key business goals around data quality and accuracy
  • Develop pipelines and automated processes to train and evaluate models in offline and online environments
  • Integrate ML models into production systems and ensure their scalability and reliability
  • Collaborate with product, data science, and engineering partners across Stripe to identify opportunities where ML can improve outcomes for merchants and consumers
  • Engage with the latest ML/AI developments and take calculated risks in transforming innovative ideas into productionized solutions
  • Mentor engineers and contribute to a strong ML engineering culture within the team

Who you are

We're looking for someone who meets the minimum requirements to be considered for the role. If you meet these requirements, you are encouraged to apply. The preferred qualifications are a bonus, not a requirement.

Minimum requirements

  • 10+ years of industry experience building and shipping ML systems in production
  • Proficient with ML libraries and frameworks such as PyTorch, TensorFlow, XGBoost, as well as Spark
  • Hands-on experience in designing, training, and evaluating machine learning models
  • Hands-on experience in productionizing and deploying models at scale
  • Hands-on experience in orchestrating data pipelines and efficiently leveraging large-scale datasets
  • Strong collaboration skills and the ability to work across teams and contribute to peers' success
  • Ability to thrive with a high level of autonomy and responsibility and an entrepreneurial mindset

Preferred qualifications

  • MS or PhD degree in ML/AI or a related field (e.g., math, physics, statistics, computer science)
  • Experience in fintech, open banking, or financial data domains
  • Experience with NLP, LLMs, or text classification at scale
  • Experience in adversarial or noisy-data domains such as fraud detection, risk modeling, or data quality
  • Proven track record of building and deploying ML systems that have effectively solved ambiguous business problems
  • Experience with deep learning architectures, including transformers
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Create your free OnJob profile to apply — we'll take you to Stripe's application after sign-up. · Posted 25 Aug 2026.

Staff Machine Learning Engineer, Financial Connections at Stripe — questions answered

What does the Staff Machine Learning Engineer, Financial Connections role at Stripe pay?

Stripe does not publish a salary on this Staff Machine Learning Engineer, Financial Connections listing, so OnJob shows no figure for it rather than an estimate. For what this role pays across the market, the OnJob salary guides aggregate the live listings that do disclose pay.

Where is the Staff Machine Learning Engineer, Financial Connections role at Stripe based?

Stripe lists this Staff Machine Learning Engineer, Financial Connections role in New York, advertised as full time work at that location. Larger employers sometimes cover several sites under one city name, so confirm the exact office with Stripe before you apply.

Is the Staff Machine Learning Engineer, Financial Connections role at Stripe still open?

The Staff Machine Learning Engineer, Financial Connections posting at Stripe was open at OnJob's last check of the employer's careers page, having been published on 25 August 2026. OnJob re-checks source listings on each build and marks a role closed once it disappears, but listings can close without notice, so the employer's own page is the final word.

How do you apply for the Staff Machine Learning Engineer, Financial Connections role at Stripe?

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