VP, Modeling & Data Science - San Francisco, CA

Pivotal Solutions

San Francisco (CA)

On-site

USD 228,870 - 324,200

Full time

14 days+

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Job summary

A financial technology leader in San Francisco seeks a VP of Modeling & Data Science. This role requires extensive experience in consumer lending, machine learning, and analytical leadership. You'll set the modeling strategy and lead a high-performing team to innovate and enhance models for credit and fraud decisioning. A strong command of predictive modeling techniques and excellent communication skills are essential. Competitive salary range: $228,870 - $324,200.

Qualifications

  • 15+ years of relevant business experience, mainly in consumer lending.
  • 10+ years of experience leading and developing analytical teams.
  • Hands-on experience with predictive modeling and machine learning.

Responsibilities

  • Set the enterprise modeling strategy across key domains.
  • Drive AI/ML model innovation and oversee deployment.
  • Lead a team of modeling and data science professionals.

Skills

Predictive modeling methods
Machine Learning (ML)
Deep Learning
Statistical analysis
Data mining techniques
Communication skills

Education

Degree in a quantitative field

Tools

TensorFlow
PyTorch
NumPy
Scikit-Learn
Pandas

Job description

VP, Modeling & Data Science – San Francisco, CA

We are seeking an innovative and highly experienced quantitative data science leader to join us as our VP, Modeling & Data Science. This pivotal role will shape the next generation of modeling strategies across our enterprise—spanning personal loans, auto, purchase finance, and deposits.

As a key member of the leadership team, you will be responsible for setting a clear strategic vision for modeling excellence, including integrating next-generation machine learning (ML), AI capabilities, and advanced data sources into our credit, fraud, and marketing ecosystems. We’re looking for a leader with extensive experience in the consumer lending or Fintech industry who is passionate about leveraging advanced analytics and machine learning to solve complex business problems. You will lead a high-performing team of modelers and partner cross-functionally to build an agile, future-ready modeling infrastructure.

What You’ll Do
  • Set the enterprise modeling strategy across key domains: credit underwriting, fraud detection, marketing targeting, pricing, and operational decisioning.
  • Champion AI/ML model innovation and oversee deployment of advanced statistical and ML models across our ecosystem.
  • Drive the development, enhancement, and governance of a comprehensive suite of models, ensuring performance, interpretability, and compliance.
  • Collaborate with Technology to evolve our machine learning platform for scalable experimentation, deployment, and monitoring.
  • Lead a team of 6–10 seasoned modeling and data science professionals, fostering a culture of innovation, curiosity, and rigor.
  • Build robust partnerships with cross-functional teams including Credit Strategy, Marketing, Risk, Operations, Engineering, and Compliance.
  • Evaluate and integrate emerging data sources to unlock new insights and opportunities across our lending and deposit products.
  • Set the agenda for continuous improvement in tools, technologies, and methodologies.
  • Serve as a modeling thought leader, representing us in industry forums and regulatory discussions, and benchmarking best-in-class practices.
  • Partner closely with Model Risk Management to ensure strong governance and alignment with evolving regulatory expectations.
  • Communicate complex technical and business topics with clarity and impact to senior leadership, the board, and regulators, on all aspects pertaining to the management of the modeling/AI/ML function.
About You
  • 15+ years of relevant business experience, with a significant portion in consumer lending.
  • 10+ years of experience leading and developing teams of modelers, data scientists, or other analytical functions.
  • Extensive hands‑on experience with predictive modeling methods (e.g., logistic regression, multivariate linear regression, decision tree, cluster analysis), with a strong command of a wide range of advanced data mining and machine learning techniques.
  • Deep practical experience and solid understanding of machine learning and deep learning methods (e.g., GBM, Neural Networks).
  • Proficiency with leading machine learning and deep learning toolkits (e.g., TensorFlow, PyTorch, NumPy, Scikit‑Learn, Pandas).
  • Experience establishing or scaling enterprise‑level ML platforms and practices.
  • Experience with consumer credit portfolios and data science/decision science/risk management within the banking sector is a significant plus.
  • Hands‑on knowledge of credit and fraud functions development in a regulated banking or fintech environment.
  • Strong understanding of model governance, validation, and regulatory compliance in financial services.
  • A systems thinker who is comfortable operating in both strategic and technical dimensions.
  • Ability to develop sophisticated quantitative measurements and analyses to address multi‑dimensional business needs.
  • Exceptional communication skills, with the ability to clearly and precisely articulate technical and business topics across all levels of management, including senior executives and regulators.
  • Proven ability to influence and drive change cross‑functionally, championing new ideas and approaches.
  • Degree in a quantitative field (e.g., Statistics, Computer Science, Engineering, Economics); a Master’s or PhD is preferred, though equivalent professional experience will also be considered.

San Francisco, CA $228,870 - $324,200 3 days ago

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