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Sun King logo

Senior Data Scientist — Clean Cooking (PAYG LPG)

Sun King
Posted 4 hours ago
🇰🇪Kenya🏢Hybrid📁Data & Analytics
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About the role At Sun King, we've solved the sale, distribution and financing of solar products. The next challenge we're taking on is clean cooking. Over 2 billion people still cook with dirty and dangerous fuels. We're building on our existing sales and distribution network to supply pay-as-you-go (PAYG) LPG to families who can't afford the upfront cost of a stove and cylinder, and to serve areas where LPG was not previously available. The business runs today in Kenya, Zambia and Tanzania, with a target of 1 million active PAYG LPG customers by the end of 2028. We are looking for a Senior Data Scientist to own data products end to end — discovery, development, delivery and the feedback loop. You'll sit inside the Clean Cooking business unit and partner directly with sales, operations, customer success and the call centre to find where data science can remove the biggest blockers to clean cooking adoption, then build and ship the models that remove them. The problems are unusually concrete. One week you might be modelling how a price change affects refill behaviour across customer cohorts; the next, quantifying which early usage patterns predict a customer who activates but never builds a cooking habit, or improving how we schedule last-mile cylinder deliveries. This is a role for someone who wants their models to move a P&L, not just a leaderboard. This is a senior individual-contributor role with real product ownership, not a people-management role. You won't be a good fit if you're looking for a purely technical role without regular interaction with commercial colleagues and customers. What Success Looks like Your work will be measured against the commercial metrics of the PAYG LPG business, not model metrics alone. In your first 12 months you will be expected to: Ship 2–3 data products into production use by commercial or operations teams, each with a measured impact on at least one of: activation rate, refill frequency, dormancy/churn, ARPU or cost-to-serve. Establish the BU's approach to pricing and promotion analysis — elasticity estimates, uplift measurement and experiment design that commercial leaders actually use to make decisions. Build monitoring for the models you ship, with agreed retraining triggers and a clear owner for each. What you will be expected to do: Commercial Develop first-hand understanding of customer and commercial needs across our markets, including time in the field with sales agents and customers. Translate business problems into well-framed statistical questions, and present findings clearly to both technical and non-technical stakeholders — up to BU leadership. Prioritise ruthlessly: identify where a data product will move activation, refill frequency, retention or unit economics, and be willing to say where it won't. Manage stakeholder expectations, product scope and delivery timelines for your own workstreams. Technical Design, build and evaluate machine learning models for business-critical use cases: churn/dormancy prediction, credit and payment-behaviour modelling, demand forecasting, anomaly detection and customer segmentation. Apply probabilistic and Bayesian methods to quantify uncertainty and support decisions under uncertainty — e.g. pricing elasticity, promotion uplift and media/marketing effectiveness. Design and analyse experiments (A/B tests, geo tests, quasi-experiments) in field conditions where clean randomisation is often impossible. Perform rigorous exploratory analysis, feature engineering and data wrangling on large structured and semi-structured datasets. Partner with data and analytics engineering, who own pipelines and production infrastructure: you own the model from problem framing through validated, deployment-ready handoff, and jointly own monitoring once live. Track and communicate model performance; identify degradation and recommend retraining or redesign. Maintain clean, reproducible, well-documented code following team engineering standards. What this role is not about: Not a people-management role — this is a senior IC position (a path to leading a small team may open as the function grows). Not an MLOps/platform role — you'll work to production standards, but pipeline and deployment infrastructure is owned by MLOps Engineer. Not a reporting/BI role — dashboarding exists in the analytics team; this role builds models and data products. You might be a strong candidate if you have: Degree in Computer Science, Statistics, Mathematics, Engineering, Economics or a closely related quantitative discipline. An advanced degree is a plus, not a requirement — evidence of shipped impact matters more. Commercial A demonstrable track record of data products that measurably moved a business outcome — you can walk us through the problem, the model, the decision it changed and the number it moved. Ability to listen to and empathise with customers and colleagues, and to identify the P&L impact of a proposed data product before building it. Strong communication and storytelling: you can carry a room of non-technical commercial leaders. Experience managing upwards — product needs, trade-offs and timelines. Technical 5–8 years of hands-on experience in data science or applied ML roles, with at least 2 years owning data products end to end. Strong command of classical ML (gradient boosting, regression, clustering, ranking, time-series forecasting) and the judgment to know when simple beats sophisticated. Solid grounding in probabilistic modelling, Bayesian inference and uncertainty quantification, with working experience in a PPL such as PyMC or Stan. High proficiency in Python (the standard scientific stack) and strong SQL, including complex multi-table queries and window functions. Deep familiarity with model evaluation: cross-validation, calibration, and choosing business-aligned metrics over convenient ones. Experience with experiment design and statistical hypothesis testing. Comfortable working with cloud data warehouses and experiment-tracking tooling (we use AWS and MLflow; equivalents are fine). Strongly preferred Experience in PAYG, fintech lending, telco or other emerging-market consumer businesses — you understand irregular incomes, mobile-money payment behaviour and thin, messy data. Nice to have Survival modelling, causal inference or marketing mix modelling (MMM). Operations research / optimisation exposure (routing, scheduling) — relevant to our last-mile delivery problems. Familiarity with MLOps and model deployment on AWS (SageMaker, Lambda, ECS). What Sun King offers: Professional growth in a dynamic, rapidly expanding, high-social-impact industry An open-minded, collaborative culture made up of enthusiastic colleagues who are driven by the challenge of innovation towards profound impact on people and the planet. A truly multicultural experience: you will have the chance to work with and learn from people from different geographies, nationalities, and backgrounds. Structured, tailored learning and development programs that help you become a better leader, manager, and professional through the Sun Center for Leadership. We place great importance on sustaining a diverse, inclusive work environment. We believe that innovation and understanding comes from diversity on every spectrum. We work to make sure every Sun King team member knows that they belong, knowing that sustaining an inclusive workplace requires conscious effort and is a continuous journey, not an end-state. Sun King recruits, employs, trains, compensates and promotes people based on their experience, skills, effort, and results. We explicitly prohibit discrimination on the basis of race, religion, caste, national origin, color, gender, marital status, family structure, sexual orientation, HIV/AIDS status, or disability.

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