FutureHouse, an Eric Schmidt-backed nonprofit that aims to build an โAI scientistโ within the next decade,ย has released a new tool that it claims can help support โdata-driven discoveryโ in biology. The new tool comes just a week after FutureHouse launched its API and platform.
The tool, called Finch, takes in biology data (primarily in the form of research papers) and a prompt (e.g. โWhat can you tell me about molecular drivers of cancer mataseses?โ) and runs code before generating figures and inspecting the results. In a series of posts on X, FutureHouse co-founder and CEO Sam Rodriques compared it to a โfirst-year grad student.โ
โ[B]eing able to [do all] this in minutes is a superpower,โ Rodriques wrote. โ[Finch] actually ends up finding some really cool stuff [โฆ] For our own projects internally, we have found it to be pretty awesome.โ
FutureHouseโs proposition, like that of many, many startups and tech giants, is that Finch and other AI tools will someday automate steps in the scientific process.
In an essay earlier this year, OpenAI CEO Sam Altman said โsuperintelligentโ AI tools could โmassively accelerate scientific discovery and innovation.โ Similarly, the CEO of Anthropic, which just this week launched an โAI for scienceโ program, has boldly predicted that AI couldย help formulate cures for most cancers.
Yet evidence is lacking. Many researchers donโt consider AI today to be especially useful in guiding the scientific process. Tellingly, FutureHouse has yet to achieve a scientific breakthrough or make a novel discovery with its AI tools.
Biology, particularly on the drug discovery side, is an attractive target for AI companies. Precedence Research estimates the market was worth $65.88 billion in 2024 and could reach $160.31 billion by 2034.
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While there have been some successes, AI hasnโt provided an immediate magical solution in the lab. Several firms employing AI for drug discovery, including Exscientia andย BenevolentAI, have sufferedย high-profileย clinical trial failuresย in recent years. Meanwhile, the accuracy of leading AI systems for drug discovery, like Google DeepMindโsย AlphaFold 3,ย tends to vary widely.
Finch similarly makes โsilly mistakes,โ Rodriques said โ which is why FutureHouse is recruiting bioinformaticians and computational biologists to help evaluate its accuracy and reliability and train it while itโs in closed beta.
Folks interested can sign up here.


