AfterQuery is building a network of PhD-level and PhD-pursuing researchers to author and calibrate research-grade evaluation tasks for AI models as part of Project Kepler. A strong task is a real piece of computational work from your own research — something you have actually run, debugged, or been paid to do: data reduction, model fitting, simulation setup, instrument data processing, numerical solvers, or inverse problems. The difficulty should come from the science itself, not from artificially withheld information. We are commissioning tasks across five broad areas: Life sciences (biology, ecology, medicine, neuroscience), Physical sciences (astronomy, chemistry, materials science, physics), Earth sciences (atmospheric, environmental, geosciences, ocean), Mathematical sciences (applied mathematics, formal mathematics, operations research, statistics), and Engineering sciences (chemical, civil, electrical, mechanical). Domain: Scientific Computing (multi-discipline research task authoring) Experience: Active, hands-on research or technical experience in your field Education: Currently pursuing or holding a PhD (exceptions considered for exceptional candidates with a Master's degree and a strong research record) This is flexible, independent-contractor work: $300 per approved task, roughly 4 hours of work each, with no cap on how many tasks you can take on. Tasks go through review before approval, and most take a round or two of revision to get there — feedback is specific and you can resubmit. All accepted experts undergo standard background and identity verification.
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