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MoPhones
Data Analyst - Credit & Product
Nairobi
• Kenya
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MoPhonesProfession (Electronics)
Industry (Information technology, software development, data)
Aeronautics,Agriculture, fishing, forestry,Automotive,Banking, microfinance, insurance,Computers, software development and services,Construction, renovation, maintenance,Education, academic,Electronics,Energy, utilities, environment,Finance & FinTech,Financial Services,Fitness, well-being and lifestyle,Health care, medical,Manufacturing,Non-profit, social work,Telecommunications,
Seniority (Information technology, software development, data, Electronics)
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MoPhones
Electronics
Description
Required
- 3–5 years of experience in an analytics or BI role, with a track record of building self-service dashboards and automated reporting that reduce ad-hoc analyst dependency.
- Advanced SQL and data transformation expertise: dimensional modelling, ETL/ELT pipelines, and production-grade dataset design.
- Solid grounding in statistical methods: A/B test design, regression analysis, and the ability to distinguish correlation from causation in messy business data.
- Demonstrated ability to communicate analytical findings to non-technical stakeholders in writing and in person.
Responsibilities
Product Analytics
- Design and maintain dashboards covering acquisition funnels, conversion rates, channel performance, and customer segmentation across online and retail.
- Analyse the impact of promotional campaigns, pricing changes, and device mix decisions on conversion, revenue, and customer lifetime value.
- Partner with commercial and marketing stakeholders to design experiments (A/B tests, holdout groups) and deliver attribution analysis that separates signal from noise.
- Identify behavioural patterns in the customer journey that inform product development, UX decisions, and go-to-market strategy.
Credit and Portfolio Analytics
- Build and maintain self-service dashboards for portfolio health, delinquency trends, collections performance, and risk segmentation.
- Conduct causal investigations correlating device performance, customer demographics, promotional history, and payment behaviour to identify true default drivers.
- Support underwriting optimisation through data-driven analysis of approval criteria, score thresholds, and policy change outcomes.
- Translate credit performance data into clear, actionable recommendations for the credit and risk leadership team.
BI Infrastructure and Data Quality
- Design and automate data pipelines that transform raw credit bureau data, payment histories, and operational systems into reliable, production-grade datasets.
- Partner with the Analytics Engineering Lead to establish data quality standards, documentation practices, and analytical frameworks that enable progressive data autonomy across teams.
- Reduce dependency on ad-hoc analyst requests by building repeatable, self-service data products.
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