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Senior CV ML Engineer @ Rawventures

Not specifiedOnsiteFull-time
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About this role

We’re hiring for a Raw Ventures portfolio company — a computer vision platform that processes millions of images from real-world deployments and turns them into actionable insights for industry partners. Series A.

The role

You own the CV detection stack end-to-end — models, data, labeling and validation processes, evaluation methodology, production serving. You close the loop with the validators team and stay close to customers and product to keep model work tied to real-world value. Senior autonomy: you set direction and ship.

Stack

PyTorch • YOLO 11 • Roboflow • Triton • CUDA • AWS • EKS • S3 • Docker • Claude Code

What you’ll do

• Own the full model lifecycle — data, labeling, training, evaluation, deployment, monitoring, feedback

• Improve detection/segmentation models across diverse real-world conditions, lighting, environments

• Build labeling, testing, and validation processes with the validators team — taxonomies, guidelines, QA loops, active learning

• Define evaluation methodologies; identify weak spots and fix them

• Stay close to customers and product — what they pay for shapes model priorities

• Productionize models on Triton — latency, throughput, cost

• Drive research direction: pretraining, architectures, multi-stage pipelines

What we expect

• 5+ years CV/ML with senior depth

• Deep understanding of the full CV model lifecycle

• Track record of high-quality production CV models — robust across real conditions, edge cases handled

• Methodological eye — you spot when evaluation, labeling, or training is broken and fix it

• Product and business sense — you understand how models make money, don’t chase accuracy that doesn’t move the business

• Hands-on YOLO (YOLO 11 ideal, any recent version counts)

• Experience designing labeling/annotation processes with annotation teams

• Roboflow workflows or comparable (dataset versioning, labeling, augmentation)

• Triton deployment and optimization (or comparable serving infra)

• MLOps fundamentals — experiment tracking, model versioning, evaluation, production monitoring

• Strong PyTorch, production-grade Python (not just notebooks)

• Russian — fluent or native (required)

• English B1+

• Central European working hours

Nice to have

Active learning, semi-supervised methods • Self-supervised pretraining for domain adaptation • Model quantization / pruning / ONNX / TensorRT • Scientific imaging or biology • Multi-camera / multi-view systems • Edge inference on devices

What we offer

• Fully remote, CET hours

• Real product impact at scale

• Direct contact with leadership and engineering team

• AI-augmented development culture

• Competitive compensation, discussed individually

Skills

Business Development & Partnerships

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