Former OpenAI researcher predicts brain-controlled AI coding agents by 2027
Former OpenAI alignment researcher Naomi Bashkansky stated she resigned from the AI firm on July 23 and joined Conduit the following day as a founding researcher. At Conduit, she’s going to work on fashions designed to show non-invasive neural recordings into textual content that may direct AI agents, a aim her essay calls “telepathy.”
Bashkansky stated she spent about 1.5 years at OpenAI, and described the brand new function in an Aug. 4 essay. She predicted {that a} headband may decode tough intentions into prompts for an AI coding agent in 2027.
Her later scenarios envision AI programs consuming neural representations immediately by 2030 and two-way “learn and write” expertise by 2035.
She referred to as these vignettes optimistic predictions, and the essay consists of no launch dedication for any of them.

The data-scale guess
In a December 2025 account, Conduit stated it had gathered roughly 10,000 hours of neuro-language knowledge from 1000’s of individuals. Participants wore multimodal headsets whereas typing, talking, studying or listening throughout periods with a language mannequin.
The firm printed a number of claimed zero-shot examples, excluding mixture efficiency metrics, its analysis protocol or third-party replication. Bashkansky argued that Conduit’s outcomes enhance with rising coaching hours and described the work as a greenfield various to the narrower analysis she may pursue at OpenAI.
Meta reported in June that the outcomes of its newest Brain2Qwerty reached 61% average word accuracy and 78% for its finest participant, with efficiency enhancing log-linearly as knowledge elevated.
The experiment recorded 9 folks with magnetoencephalography whereas they actively typed sentences.
Where present programs fall brief
A Nature Communications study spanning 723 members additionally discovered that efficiency improved with extra EEG and MEG knowledge. Yet it studied folks studying or listening relatively than producing language, and reported 20% top-1 accuracy in a 50-word comparability.
The examine’s authors stated sensible non-invasive brain-to-text remained an open problem.
Conduit’s subsequent evidentiary hurdle is to determine public mixture efficiency by linking its 10,000-hour dataset to a transportable system that decodes free-form thought. The firm has not but proven that consequence.
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