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Global R&D Data Analyst (Fixed-Term)

One Acre Fund

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Posted 3 weeks ago

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Overview

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No salary declared 😔

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Nairobi, Kenya or Kigali, Rwanda

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Seeking a data analyst with strong experimental design and data science skills to analyze trials, surveys, and geospatial data, build decision-support tools that improve agronomic recommendations and program impact for smallholder farmers. From R&D to sales to strategy to operations, the Global R&D Data Analyst has the unique opportunity to improve decision-making across all aspects of One Acre Fund’s program using many diverse data types, such as sales, yield, demographic and satellite data, to help us reach more farmers with greater impact. The Global R&D Data Analyst will help us reach over one million farmers by executing analyses for strategic decision-making on repayment, expansion, and other business functions, and work directly with program leaders to interpret results and make data-driven decisions. The Global R&D Data Analyst will play an integral role in shaping One Acre Fund’s data strategy, including dreaming up and executing new ways to use our data to improve our program. Additionally, One Acre Fund has a robust agronomic and socioeconomic research program spanning all countries of operation. This role will work closely with country R&D teams to ensure all trials are executed at the highest possible standards, provide follow-up analytical support and training to team members, and support with warehousing of our agronomic data to make our research outputs accessible to external collaborators, further increasing One Acre Fund’s smallholder farmer impact across the continent. To succeed in this role, you will need to be a strong communicator and have a solid analytical background with experience in experimental design. You will need to be comfortable interpreting ambiguous results generated with imperfect data and advising leaders on the relative risk associated with different decisions based on the results of your analysis. This is a deliberately hybrid role. Success requires the ability to operate effectively as: an experimental methodologist (trial design & causal inference), an applied data scientist (production analytics, geospatial methods, modelling), and a delivery-oriented project manager (prioritisation, documentation, coordination).

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