Theta Neurotech
 is hiring a fractional

Machine Learning Lead

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Weekly Commitment

10 - 20 hrs

Compensation Range

Unknown

Company Stage

Early-stage VC

Industry

Healthtech

Location

Hybrid (Chicago only)
moonlight ok
moonlight ok
convert full-time
convert full-time
equity offered
equity offered
hands-on needed
hands-on needed

Note: We've kept the name of the company private. If you'd like to know the company before requesting an intro, just email us at hello [at] fractionaljobs.io

Company Description

Theta Neurotech is developing a wearable EEG patch designed to predict epileptic seizures 30–60 minutes before onset. The company focuses on improving quality of life for the 1.1 million Americans and 30 million people globally living with drug-resistant epilepsy. By enabling preventative drug deployment, Theta Neurotech aims to reduce seizure-related risks and support more independent lifestyles. Applicants will join an early-stage team working at the intersection of neuroscience, medical devices, and advanced machine learning to build clinically meaningful technology.

Role Description

The Fractional Machine Learning Lead will provide part-time technical leadership for the design, development, and optimization of ML and deep learning models that power Theta Neurotech’s seizure prediction system. Day-to-day responsibilities include defining model architectures, implementing and evaluating algorithms, and collaborating with product and clinical partners to translate EEG data into robust predictive insights. The role also involves establishing best practices for data preprocessing, feature engineering, experimentation, and deployment, as well as mentoring team members and contributing to technical roadmaps. This is a part-time hybrid role based in Chicago, IL, with a mix of on-site collaboration and work-from-home flexibility.

Qualifications

  • Strong foundation in Computer Science, including data structures, algorithms, and software engineering principles.
  • Hands-on experience in Machine Learning and Deep Learning, with a track record of building and deploying models in production or research settings.
  • Proficiency in Statistics for experimental design, model evaluation, and analysis of noisy physiological or time-series data.
  • Ability to design and optimize Algorithms for large-scale or real-time inference, preferably in signal processing or biomedical applications.
  • Advanced programming skills in languages such as Python, and experience with ML frameworks (e.g., PyTorch, TensorFlow).
  • Experience working with time-series, biosignal, or EEG data, and familiarity with healthcare or regulated environments is beneficial.
  • Effective communication skills, with the ability to explain technical concepts to cross-functional partners and document decisions clearly.
  • Graduate-level degree (MS or PhD) in Computer Science, Electrical Engineering, Data Science, or a related quantitative field, or equivalent practical experience.

How to Apply

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