Consultant, Data Science Risk Analyst Job Pezesha
Location | NAIROBI, Kenya |
Date Posted | July 16, 2025 |
Category |
Communication
Education / Teaching Finance Sales and Marketing |
Job Type |
Full-time
|
Currency | KES |
Description
Consultant, Data Science Risk Analyst Job
Pezesha is a fast-growing digital credit and embedded finance platform focused on enabling financial access for underserved SMEs across Kenya and Uganda. As we deepen our data-driven approach to risk management and scale our operations, we are seeking a full-time Data Science Risk Analyst Consultant to join our team
This role is ideal for a data scientist with strong domain expertise in credit risk, portfolio modeling, and predictive analytics within fintech, banking or digital lending environments. You will work closely with cross-functional teams to develop models, generate insights, and improve the performance of our credit and collections strategies.
This is a 12-month full-time consulting contract, with the potential for renewal based on performance and evolving business needs.
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Responsibilities
- Apply advanced analytics, machine learning, and statistical modeling to assess and improve credit risk performance across multiple portfolios.
- Develop, validate, and monitor credit scoring models, repayment behavior models, and fraud detection algorithms using Python, R, or similar tools.
- Design and maintain real-time risk dashboards and automated reporting pipelines to support portfolio monitoring and decision-making.
- Lead exploratory data analysis (EDA) to identify trends in borrower behavior, delinquency patterns, and collection effectiveness.
- Collaborate with data engineering and product teams to integrate new data sources (e.g., M-Pesa, alternative credit data, behavioral signals) into core decisioning systems.
- Conduct segmentation and cohort analysis to uncover opportunities for risk-based pricing, credit limit management, and targeted collections strategies.
- Support scenario analysis and risk stress testing to evaluate portfolio resilience under different economic or operational conditions.
- Produce and present actionable insights to the Credit Committee and senior stakeholders on a weekly basis.
- Evaluate the performance of credit policies and collection workflows, and recommend improvements based on data-driven analysis.
- Ensure data quality and integrity through regular audits and contribute to strengthening data governance and model risk management practices.
Deliverables
- Development and deployment of predictive models for credit risk, repayment prediction, and fraud detection.
- Automated credit risk dashboards and reporting tools delivered in collaboration with the data team.
- Integration of at least one new high-impact data source to enrich credit decisioning.
- A detailed risk gap analysis and process optimization report covering credit and collections operations.
- Clear, measurable impact on key credit performance indicators (e.g., reduction in PAR 30+, improved repayment efficiency, increased predictive power of scoring models).
- Internal training materials and sessions delivered on model usage, risk dashboards, and analytics best practices.
Qualifications
- Bachelor’s or Master’s degree in Data Science, Statistics, Computer Science, Quantitative Finance, Actuarial Science, or a related quantitative discipline.
- Minimum 5 years of experience applying data science and analytics in a financial services or fintech environment, with a focus on credit risk.
- Proficient in Python, R, SQL, and common ML/data science libraries (e.g., scikit-learn, XGBoost, pandas, statsmodels).
- Strong experience in predictive modeling, supervised learning, time series analysis, and A/B testing.
- Familiarity with financial services data (e.g., mobile money, transaction data, credit bureau records) and lending processes.
- Experience working with BI tools for dashboard development and data visualization.
- Excellent written and verbal communication skills, with the ability to translate complex data insights into clear business recommendations.
- Comfortable working in fast-paced, cross-functional teams, and managing multiple analytical projects simultaneousl
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