Global R&D Data Analyst (Fixed-Term) at One Acre Fund
One Acre Fund View all jobs
- Kenya
- Contract
- Full-time
- Sample size and power calculations
- Stratification and experimental design
- Recommend the appropriate statistical methods (e.g., hypothesis testing, regression, ANOVA/mixed models)
- Lead analysis of agronomic and product trials to estimate treatment effects and program impact
- Quality assure trial designs and analyses produced by other analysts
- Translate trial findings into clear recommendations for product design, agronomic guidance, and program strategy.
- Build, maintain, and improve analytical pipelines and production codebases that power operational decision tools (e.g., sowing date or input recommendations), including occasional support at the production level.
- Integrate survey, MEL, and operational data with geospatial layers (soil, climate, vegetation, remote sensing) to generate localised recommendations and program targeting strategies.
- Conduct spatial and remote-sensing analyses for program design, prioritisation, and impact estimation (e.g., soil erosion modelling, site suitability analysis).
- Analyse historical trial and soil data to generate input and soil management recommendations (e.g., lime application, fertiliser rate application).
- Evaluate potential impact of alternative interventions and support pilot design, iteration, and scale decisions.
- Translate analyses into decision-ready outputs (briefs, dashboards, and memos) for non-technical stakeholders.
- Identify new, high-leverage analytical use cases that improve program reach, impact, or cost-effectiveness.
- Lead curation and standardisation of historical yield, agronomic practice, and trial datasets to enable reuse and external research collaboration.
- Own knowledge management for impact data and trials, including:
- Central documentation of methodologies, assumptions, sample sizes, and results for all projects
- Reusable analysis templates and reference implementations
- Manage external data requests in compliance with client data protection and confidentiality protocols.
- Maintain project plans, priorities, and timelines
- Track dependencies and risks
- Coordinate with program and R&D stakeholders to identify potential delivery risks
- Establish durable documentation and planning systems (e.g., project roadmaps, project trackers, shared repositories).
- Bachelor’s Degree in one of the following fields: economics, econometrics, mathematics, or statistics
- Proficiency in R and/or Python, including working knowledge of –
- Database connectivity (e.g., PostgreSQL) to enable data retrieval, manipulation, and storage from various databases
- Interact with RESTful APIs (e.g., JSON, XML)
- Data manipulation libraries (e.g., dplyr, tidyr) for efficient data wrangling, transformation, and exploration
- Packages for data visualisation (e.g., ggplot2, lattice, plotly)
- Advanced statistical analysis and modelling (stats, lme4, survival)
- Machine learning frameworks (e.g., randomForest, xgboost, caret) for building predictive models and conducting machine learning tasks
- Packages for data manipulation and visualisation, such as numpy, pandas, and Matplotlib
- Spatial data manipulation libraries (geopandas, rasterio, shapely, GDAL)
- In-depth knowledge of statistically rigorous trial design methodologies, including RCTs, side-by-side comparisons, RCBD, and other experimental designs
- In-depth knowledge of statistically rigorous survey design methods, including random, stratified, and cluster sampling
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