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Eon Systems

Eon Systems

Brain emulation research company

Machine Learning Engineer - Connectomics

Full-Time
$180k - $260k/yr

+ Equity

Mid
San Francisco, CA, USA
In Person

About the job

Requirements
  • Strong ability to create polished and engaging visualizations.
  • Experience with Neuroglancer, BigDataViewer, Fiji/ImageJ, CloudVolume, TensorStore, Zarr, N5, DVID, CAVE, or related tools.
  • Experience with affinity prediction, watershed segmentation, flood filling networks, U-Nets, transformers for vision, or other computer vision models for biological image data.
  • Experience with distributed data processing, cloud infrastructure, GPU inference, and high-throughput machine-learning pipelines.
  • Experience with large-scale n-dimensional array processing in Python, C++, Java, or similar environments.
  • Strong software engineering skills, including clean code, version control, testing, documentation, and reproducible workflows.
  • Experience with large data systems, ideally at terabyte scale or above.
  • Experience with computer vision, biological image segmentation, or volumetric data analysis.
  • Strong communication skills and ability to collaborate with neuroscientists, microscopists, machine-learning engineers, and data infrastructure engineers.
Responsibilities
  • Build, optimize, and maintain large-scale connectomics data pipelines for volumetric microscopy data.
  • Develop and improve machine-learning workflows for image segmentation, affinity prediction, watershed post-processing, synapse detection, and neural reconstruction.
  • Work with large-scale n-dimensional image data, including terabyte- to petabyte-scale datasets.
  • Run controlled machine-learning experiments to improve segmentation accuracy, throughput, and reliability.
  • Create polished, compelling visualizations of connectomic data, neural activity, and reconstructed circuits.
Desired Qualifications
  • GPU kernel development experience is a definite plus.

About the company

Eon Systems is a neuroscience research company developing brain-emulation technology. The company collects connectomic data and builds computational models, simulations, and embodied digital representations of biological nervous systems. It serves neuroscience researchers, computational biologists, AI researchers, and organizations studying intelligence. Its operating model centers on experimental neuroscience, large-scale data collection, simulation, and software research. Teams work across neuroscience, computational biology, imaging, machine learning, simulation, software, and research operations. The business combines technical knowledge, practical execution, and ongoing support across the markets it serves.

Company Size

11-50

Company Stage

N/A

Total Funding

N/A

Headquarters

San Francisco, California

Founded

2024

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Simplify's Take

What believers are saying

  • Eon’s March 2026 fly demo produced walking, grooming, and sugar-seeking behaviors.
  • The company claims 139,255 neurons and 50 million connections, a visible technical moat.
  • Current attention from The Register and The Decoder amplifies recruiting and partnership leverage.

What critics are saying

  • Experts in March 2026 said Eon’s fly demo lacked methods and independent validation.
  • The model relies on reinforcement learning and simple neuron abstractions, not real fly biology.
  • Mouse-brain emulation by 2028 demands vastly more compute; failure kills the company narrative.

What makes Eon Systems unique

  • Eon Systems pairs a FlyWire fly connectome with MuJoCo body simulation, March 2026.
  • Founder Michael Andregg frames brain emulation as engineering sprint, not academic research.
  • Eon published Nature-linked fly-model code, signaling stronger technical credibility than pure hype startups.

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Benefits

Remote Work Options

Competitive salary and equity

Growth & Insights and Company News

Headcount

6 month growth

-6%

1 year growth

-6%

2 year growth

-6%
The Register
Mar 16th, 2026
Startup simulates fruit fly brain that walks, grooms, and hunts for sugar in virtual environment

San Francisco startup Eon Systems claims to have created the first digital simulation of a fruit fly brain capable of controlling a virtual body and producing recognisable behaviours. The team connected a whole-brain connectome of Drosophila melanogaster — containing 125,000 neurons and 50 million synapses — to a virtual body model using the Brian2 neural network simulator. The resulting model demonstrated fly-like behaviours including walking, antenna cleaning, and extending its proboscis when presented with sugar scent signals. Dr Steve Furber, co-creator of the ARM processor, called the work "pretty impressive". However, critics note the simulated brain doesn't operate exactly as a real fly's brain does, relying on machine learning clamped into a connectome shape. The research builds on existing work including the Flywire connectome and NeuroMechFly v2 model.