Computer Vision Engineer
GenLogs Corporation · Atlanta, GA ·
- Employment
- Full time
- Category
- ML ai
- Experience
- 4+ years
GenLogs Corporation · Atlanta, GA ·
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Owns computer-vision systems end to end for GenLogs' roadside camera network — building vehicle detection, tracking, OCR, and re-identification models and deploying/monitoring them on constrained edge hardware. Core stack: Python, OpenCV, PyTorch, and GPU inference tools like CUDA, ONNX, and TensorRT.
ABOUT THE DATA TEAM
The Data Science team at GenLogs transforms raw observational data from the our sensor network into high-value intelligence used by law-enforcement agencies, regulators, ports, and private-sector freight operators. We build models, analytics, and measurement frameworks that enable vehicle detection, entity resolution, behavioral insights, fraud and theft indicators, compliance signals, and network-wide operational performance metrics. Our work sits at the center of our platform, shaping how billions of roadside observations become actionable information. We partner closely with Engineering and Product to deploy algorithms at scale and with Go-to-Market teams to define customer-facing analyses that drive real operational outcomes. The team blends statistical rigor, ML capability, and domain expertise to create a new standard for freight intelligence in the United States.
You will own computer-vision problems end to end from the photons entering a roadside camera to the structured vehicle intelligence delivered by our platform.
This is not a role where you train a model, publish an evaluation, and hand it to another team to productionize. You will be responsible for understanding the entire system: camera placement and configuration, image quality, training data, model architecture, edge inference, production deployment, monitoring, and downstream outcomes.
Our operating environment is unforgiving. Trucks move at highway speeds through darkness, glare, rain, snow, occlusion, extreme perspectives, and inconsistent connectivity. Models must run reliably on constrained edge hardware across a geographically distributed sensor network. Improvements that look promising offline must survive actual roadside conditions and measurably improve the intelligence our customers receive.
You will have the autonomy to attack these problems wherever the evidence leads. One day that may mean designing a better OCR or detection model. The next may mean profiling a TensorRT pipeline, diagnosing video compression artifacts, redesigning an evaluation dataset, or working with field teams to change exposure, shutter speed, lighting, or camera positioning.
We’re looking for someone who doesn’t stop at “the model works.” You own the outcome.
WHAT YOU’LL DO
At GenLogs, ownership does not end when a pull request is merged or a model artifact is produced.
If a model performs well offline but fails in the field, you investigate why. If inference is too slow, you profile and optimize it. If image quality is limiting performance, you work with the people configuring and installing the cameras. If the available data cannot answer the question, you help define what needs to be collected. If production metrics do not reflect the real outcome, you improve the metrics.
You will have strong partners across Engineering, Data, Product, Hardware, and Field Operations, but you remain accountable for driving the problem to resolution.
We value people who cross boundaries, follow evidence, and finish what they start.
You will thrive here if you:
GenLogs establishes compensation based on role, level, experience, and location. Salary bands are benchmarked against high-growth technology companies and adjusted for market conditions. Equity grants are included in most full-time offers to ensure every team member participates in the company’s long-term value creation. A recruiter will provide a precise range during the hiring process.
A recruiter can provide more detail about the specific compensation and benefits associated with this role.
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