Former OpenAI researcher predicts brain-controlled AI coding agents by 2027

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Former OpenAI alignment researcher Naomi Bashkansky said she resigned from the AI company on July 23 and joined Conduit the next day as a founding researcher. At Conduit, she will work on models designed to turn non-invasive neural recordings into text that can direct AI agents, a goal her essay calls “telepathy.”

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Bashkansky said she spent about 1.5 years at OpenAI, and described the new role in an Aug. 4 essay. She predicted that a headband could decode rough intentions into prompts for an AI coding agent in 2027.

Her later scenarios envision AI systems consuming neural representations directly by 2030 and two-way “read and write” technology by 2035.

She called those vignettes optimistic predictions, and the essay includes no launch commitment for any of them.

Infographic comparing optimistic thought-to-text forecasts for 2027, 2030 and 2035 with current evidence from former OpenAI researcher that joined Conduit, Meta Brain2Qwerty v2 and a Nature Communications study.
Current thought-to-text studies decode constrained speech-related brain activity, while portable, free-form communication remains unproven despite forecasts extending to 2035.

The data-scale bet

In a December 2025 account, Conduit said it had gathered roughly 10,000 hours of neuro-language data from thousands of people. Participants wore multimodal headsets while typing, speaking, reading or listening during sessions with a language model.

The company published a few claimed zero-shot examples, excluding aggregate performance metrics, its evaluation protocol or third-party replication. Bashkansky argued that Conduit’s results improve with increasing training hours and described the work as a greenfield alternative to the narrower research she could pursue at OpenAI.

Meta reported in June that the results of its latest Brain2Qwerty reached 61% average word accuracy and 78% for its best participant, with performance improving log-linearly as data increased.

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