Research Scientist, Machine Learning (PhD)
Quick Summary
About Synaptrix Labs Inc. Synaptrix is on a mission to revolutionize brain-computer interfaces through non-invasive approaches. We believe that the power to diagnose and treat neurological conditions safely, and to expand human potential, will become a reality with the right fusion of deep…
Design, prototype, and optimize state-of-the-art AI systems for neural decoding, including diffusion models, graph neural networks, contrastive/self-supervised frameworks, and transformer-based sequence models.
Deep familiarity with neural signal modeling, neural decoding, or biosignal preprocessing (EEG/MEG/ECoG/EMG). Experience designing self-supervised or generative models (diffusion, VAEs, contrastive, masked modeling) for noisy, non-stationary data.
Synaptrix is building non-invasive brain-computer interfaces by treating neural decoding as a fundamental machine learning problem.
The brain produces extraordinarily high-dimensional, noisy, non-stationary signals generated by an underlying dynamical system that we can only partially observe. We are developing new models, datasets, and hardware to learn these dynamics and translate them into real-time control of computers, communication systems, mobility devices, and eventually a much broader class of machines.
We are looking for exceptional researchers across machine learning, artificial intelligence, applied mathematics, physics, dynamical systems, computational neuroscience, and related fields.
Prior experience in neuroscience or brain-computer interfaces is not required. We care much more about exceptional research ability, mathematical depth, and the ability to develop new approaches to difficult modeling problems.
- Develop new machine learning methods for modeling high-dimensional neural and behavioral data, spanning representation learning, generative modeling, sequence modeling, latent-variable models, and learned dynamical systems.
- Learn latent structure and dynamics from noisy, non-stationary, partially observed time-series data.
- Develop approaches to neural decoding that generalize across people, sessions, tasks, and recording conditions.
- Explore problems at the intersection of deep learning, dynamical systems, system identification, control, information theory, optimization, and statistical learning.
- Investigate self-supervised and unsupervised learning methods that can take advantage of large quantities of neural data without requiring dense behavioral labels.
- Design rigorous experiments to understand model scaling, generalization, representation quality, and the limits of non-invasive neural decoding.
- Build simulations and generative models for studying neural signals and testing hypotheses about learned representations and decoding algorithms.
- Work closely with researchers collecting large-scale neural datasets and engineers building the sensing hardware that generates them.
- Translate promising research into real-time systems controlling computers, communication interfaces, wheelchairs, prosthetics, and other machines.
- Build rigorous, reproducible implementations of research ideas and scale successful approaches to large datasets and compute.
- Contribute original research that advances both Synaptrix's systems and the broader scientific understanding of neural decoding.
Requirements
~1 min read- PhD or equivalent demonstrated research ability in machine learning, computer science, applied mathematics, physics, statistics, computational neuroscience, electrical engineering, or a related technical field.
- Evidence of exceptional ability to conduct original research.
- Strong mathematical foundations in areas such as linear algebra, probability, optimization, statistics, information theory, or dynamical systems.
- Strong programming ability and experience implementing and evaluating machine learning models in PyTorch, JAX, or equivalent frameworks.
- Experience working with high-dimensional, sequential, scientific, sensory, or otherwise complex datasets.
- Ability to take an ambiguous research problem from first principles through formulation, experimentation, analysis, and implementation.
- Ability to operate independently, question existing assumptions, and pursue technically ambitious ideas.
You may be an especially strong fit if your work has involved one or more of:
- Representation learning and self-supervised learning
- Foundation models
- Generative modeling
- Time-series or sequence modeling
- Latent-variable and state-space models
- Dynamical systems and system identification
- Scientific machine learning
- Inverse problems
- Reinforcement learning and optimal control
- Information theory
- Statistical physics
- Computational neuroscience
- Neural signal processing
- Multimodal learning
- Large-scale distributed model training
None of these backgrounds is individually required. We are interested in exceptional researchers with unusual technical depth, including people whose previous work has had nothing to do with neuroscience.
We are a small research-driven team working on problems where there is no established playbook. We value first-principles thinking, mathematical and experimental rigor, intellectual honesty, speed, and researchers who are willing to question assumptions about what should be possible with non-invasive neural signals.
We care more about important results than credentials, titles, or adherence to a particular modeling paradigm.
Our goal is to make non-invasive brain-computer interfaces capable enough to restore communication and mobility to people with severe disabilities, and ultimately to create a general interface between the human brain and machines.
What We Offer
~1 min readLocation & Eligibility
Listing Details
- Posted
- November 7, 2025
- First seen
- March 26, 2026
- Last seen
- September 13, 2026
Posting Health
- Days active
- 171
- Repost count
- 0
- Trust Level
- 34%
- Scored at
- September 13, 2026
Signal breakdown
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