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Staff Machine Learning Engineer, Credit Products (Square Financial Services)

Work from home Full-time role Hiring

Description:

  • Apply scientific and statistical methods to evaluate new customer segments and improve underwriting performance.
  • Lead ML operations and infrastructure initiatives, including data ingestion scaling and support for more advanced model architectures.
  • Design and implement the full credit modeling stack from data signal curation through production decisioning logic.
  • Use data science techniques to turn messy external and internal data sources into usable modeling inputs.
  • Identify and execute improvements to credit policy that improve customer outcomes and portfolio performance.
  • Support updates to existing models and troubleshoot issues in a real-time production environment.
  • Operate within the requirements of a regulated banking environment, balancing innovation with safety, soundness, and compliance.

Requirements:

  • 8+ years of related experience with a bachelor's degree, 6+ years with a master's degree, or a PhD with 3+ years of experience in machine learning or statistical models deployed in production.
  • Degree in a technical field such as Computer Science, Mathematics, Statistics, Physics, or Engineering.
  • Strong quantitative intuition and data visualization skills.
  • Proven ability to conduct sophisticated ad-hoc and exploratory analysis.
  • Full-stack proficiency preferred, with the ability to work across data pipelines and production-grade software architecture.
  • Ability to communicate clearly with both technical and non-technical audiences, including executive stakeholders.
  • Pragmatic problem-solving approach with the ability to choose the right tool while navigating business, technical, and regulatory constraints.
  • Experience with tree-based models and gradient boosting is helpful but not required.
  • Demonstrated track record of scientific research or an advanced degree is strongly preferred.

Benefits:

  • Market-based pay with U.S. salary zones; starting salary ranges from $194,500 to $343,100 USD depending on location.
  • Remote work.
  • Medical insurance.
  • Flexible time off.
  • Retirement savings plans.
  • Modern family planning benefits.
  • Reasonable accommodations during the recruitment process.

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