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A/B testing

Pioneering iterative A/B testing in the social sector: rigorous, rapid, and regular

We are a learning organization: we optimize our programs through ongoing rigorous, rapid, and regular testing termly across all countries and programs. These tests act as our in-house learning muscle and help us maximise impact, cost-effectiveness and scalability.

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How it works

Iterative A/B testing is a rigorous methodology to optimize programs for cost-effectiveness and scalability. It involves:

introducing a targeted variation to an existing program

randomly allocating participants to the status quo (A) or the variation (B)

comparing changes in outcomes and costs; and

implementing the version with stronger cost-effectiveness.

Results from each test inform the design of subsequent tests, enabling continuous, iterative improvement.

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Types of test
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Cost-reducing
Similar to Jenga, elements are systematically removed to make programs leaner while maintaining impact. 

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Effectiveness-enhancing
Similar to building with Lego, elements are added to increase program impact at low marginal cost.

Principles: The 3 Rs

Rigorous

Randomized design enables causal inference about program impacts. Multiple groups receive the same program with a targeted variation to test how it can work more effectively, cheaply, and at scale.

Rapid

Results are reported within weeks or months, using short- and mid-term outcomes to inform real-time decisions.

Regular

Testing is embedded within organizational M&E systems and conducted in related, iterative cycles to optimize cost-effectiveness.

Example tests

Four related tests of our remote tutoring program, ConnectEd, conducted as part of an ongoing iterative testing cycle.

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Across all 12 tests in this case study, both cost-reducing tests and effectiveness-enhancing tests generated efficiency gains

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Working paper

Cheaper (and more effective) by the dozen: Evidence from 12 randomised A/B tests optimising tutoring for scale

Through iterative experimentation, we deliver rigorous, rapid evidence that identifies cost-reducing and effectiveness-enhancing innovations and ultimately makes the ConnectEd program more scalable.

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Article

Iterative A/B testing for social impact: Rigorous, rapid, regular

This Stanford Social Innovation Review article focuses on how organizations can close the gap between measurement and implementation, by using A/B testing.

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Toolkit

Iterative A/B testing toolkit

A jump-start guide to embedding rigorous, rapid, and regular testing in your organization; this Toolkit distills a decade of field experience into practical steps, best practices, and tools to help any team learn faster and scale impact.

Evidence & tools
Work with us

Building on nearly ten years of A/B testing experience, we now support other organizations interested in integrating the approach. If you are an organization interested in using A/B testing to optimize your programs, read more about the support available here.

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