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Intuit Staff Fraud Risk Analyst 
Kenya, Nairobi County, Nairobi 
691607147

Today
Responsibilities
  • Lead the end-to-end development and continuous enhancement of loss forecasting models using statistical, econometric, and machine learning methods.
  • Own the monthly and quarterly loss forecasting cycles , partnering with Finance, Risk, and Product to deliver insights and ensure alignment with strategic goals.
  • Translate macroeconomic indicators, internal credit performance, and product changes into refined forecast assumptions and actionable scenarios.
  • Drive stress testing , scenario planning, and sensitivity analysis.
  • Maintain strong governance and audit readiness for forecasting models, documentation, and regulatory compliance.
  • Serve as a subject matter expert on loss forecasting and credit analytics for cross-functional stakeholders and executive leadership .
  • Mentor junior analysts and influence cross-team modeling standards and best practices.
  • Leverage data visualization platforms (e.g., Power BI, Tableau ) to present results and track forecast performance.

Required:

  • Bachelor's or Master’s degree in Economics, Finance, Statistics, Data Science, or a related field.
  • 8–10+ years of experience in credit loss forecasting, credit risk analytics , or quantitative finance , with increasing responsibility.
  • Demonstrated expertise in loss modeling , economic drivers of credit risk, and lifecycle behavior of consumer or small business credit products.
  • Proficiency in SQL and either Python , R , or SAS for large-scale data analysis and modeling.
  • Deep understanding of regulatory frameworks including and stress testing requirements.
  • Strong business acumen and ability to collaborate with cross-functional partners in Finance, Product, Risk, and Engineering .

Preferred:

  • Significant experience in fintech , major banks, or consulting.
  • Strong knowledge of Quicksight, Tableau, or other BI tools for visualization and dashboarding..
  • Expert storytelling and presentation skills—ability to explain complex concepts to non-technical audiences.
  • Familiar with machine learning and similar modeling techniques.

What You’ll Bring to the Team

  • A data-driven mindset with strong attention to detail and a passion for solving complex problems.
  • Ability to think critically about model assumptions and the implications of forecast outputs.
  • Comfort working in a fast-paced, cross-functional environment with multiple stakeholders.
  • Curiosity and a proactive approach to improving existing processes and uncovering new insights.