Job Description
This is a hands-on engineering role, not a research-only one. You’ll train and optimize models and get them running reliably in production — building the data pipelines(and MLOps), serving infrastructure, and evaluation harnesses that turn a notebook experiment into something that survives contact with real field imagery (day/night, IR/RGB, weather, bad signal). You’ll also help shape where we take agentic and LLM/VLM capabilities next.
What You’ll Do
- Train, fine-tune, and evaluate computer-vision models (object detection, image quality, static-object/duplicate suppression) on real-world camera imagery
- Own the model-serving pipeline — package models into our NVIDIA Triton ensembles (DALI GPU preprocessing → TensorRT inference → post-processing), build and deploy TensorRT engines, manage the model repository and no-downtime reloads
- Build and curate datasets — ingestion, labelling, and quality control using FiftyOne(Voxel51) and Label Studio; identify and fix the data problems that actually move model accuracy
- Design evaluation harnesses so model changes are measured, not guessed — regression suites, A/B comparisons, and metrics tied to real detection quality
- Develop LLM/VLM and agentic capabilities — extend our self-hosted VLM/LLM stack(vLLM and similar), build retrieval- and tool-using agents, and integrate them into engineering and product workflows
Qualifications
Must have:
- Strong Python and the modern ML stack — PyTorch, model training and fine-tuning, working in Jupyter / notebook-driven experimentation
- Practical computer vision experience — object detection, working with image data, understanding why models fail in the real world
- Experience taking models to production, not just training them — model serving, optimization, and the gap between offline metrics and live behavior
- Self-starter mindset — you can take an ambiguous accuracy problem, dig into the data, run the experiments, and ship a measurable improvement independently
- Rigorous about evaluation — you care about datasets, ground truth, edge cases, and not fooling yourself with a good-looking number
Are you interested in this position?
Apply by clicking on the “Apply Now” button below!
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