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Data Scientist, Finance

Job in San Francisco, San Francisco County, California, 94199, USA
Listing for: Dormont Manufacturing Co
Full Time position
Listed on 2026-07-04
Job specializations:
  • IT/Tech
    Data Analyst, Data Scientist, AI Business & Operations
Salary/Wage Range or Industry Benchmark: 179500 - 269500 USD Yearly USD 179500.00 269500.00 YEAR
Job Description & How to Apply Below
Position: Staff Data Scientist, Finance

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We're looking for a Staff Data Scientist, Finance to own the data science strategy for Accounting, Finance, and Payments s role sits at the intersection of financial analytics, payments intelligence, and operational automation—with direct responsibility for building the models, insights, and AI-driven systems that power financial decision‑making across the company. You'll define the technical roadmap, drive high‑impact initiatives from fraud detection to revenue forecasting, and build the analytical foundation that scales with the business.

Candidates considered for this role will be located in the San Francisco Bay Area. There will be an in‑office requirement of 3x a week.

The Job
  • Build AI-powered automation systems
    :
    Design and deploy AI/ML solutions—including LLM-based workflows—to automate financial close processes, accelerate reporting cycles, and improve data quality at scale.
  • Own the financial data foundation
    :
    Architect and maintain the data pipelines, models, and dashboards that enable Accounting, Finance, and Payments teams to operate with accuracy, speed, and confidence.
  • Drive financial forecasting and scenario modeling
    :
    Build and refine revenue, donation, and cash flow forecasting models that power FP&A, treasury, and executive planning. Develop scenario analyses that inform strategic decisions.
  • Lead payments intelligence initiatives
    :
    Design fraud detection and prevention models, optimize payment processor routing and costs, and build chargeback prediction systems that protect revenue and reduce losses.
  • Drive anomaly detection and risk monitoring
    :
    Develop models to surface irregularities in financial transactions, identify cost or revenue leakage, and support audit and compliance requirements.
  • Uncover strategic finance insights
    :
    Conduct deep‑dive analyses on unit economics, geographic and segment-level performance, and fee structure optimization to inform business strategy.
  • Shape the technical roadmap
    :
    Define best practices for financial data modeling, pipeline architecture, and analytics infrastructure; elevate data literacy and self‑service capabilities across finance functions.
  • Influence cross‑functional strategy
    :
    Serve as the trusted data science advisor to Accounting, Finance, and Payments leadership, translating complex analyses into actionable recommendations for executive audiences.
Experience & Education
  • 8+ years of experience in data science, analytics, or a related quantitative role, with demonstrated ability to own end‑to‑end data initiatives.
  • Master’s or Ph.D. in a quantitative discipline (Statistics, Economics, Mathematics, Computer Science, Engineering, or related field) or equivalent practical experience.
  • Energized by the opportunity to build from the ground up—establishing the analytical foundation while shaping the long‑term vision for financial data science.
Core Skills
  • Strong foundation in financial modeling, forecasting, and quantitative analysis.
  • Experience with anomaly detection, time‑series forecasting, or classification applied to financial data.
  • Familiarity with accounting and finance concepts (revenue recognition, reconciliation, financial close).
  • Demonstrated ability to translate business problems into analytical frameworks and measurable outcomes.
Technical Skills
  • Advanced proficiency in SQL (complex queries, window functions, performance optimization) and Python (pandas, Num Py, scikit‑learn).
  • Strong hands‑on experience with data pipeline and transformation tools, particularly dbt; familiarity with orchestration tools (Airflow, dbt Cloud) is a plus.
  • Familiarity with data warehousing platforms (Snowflake, Databricks, Big Query) and modern analytics infrastructure.
  • Demonstrated ability to leverage modern AI tools and coding agents (e.g., LLM‑based assistants, autonomous coding agents, AI‑driven data…
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