Consultation & Setting Up Google Cloud VM for Label Studio via Dockers + SAM 2 Video & Google Drive
Бюджет: -
HOURLY / PART_TIME
⭐ 0.00 (0)
Singapore
python, google-cloud-platform, pytorch, cuda, docker-compose, computer-vision, data-labeling
Role: Full-Stack Systems & Edge AI Engineer
We are a Singapore-based startup building cutting-edge computer vision solutions for the food industry. We are seeking a hands-on, end-to-end engineer to take ownership of our pipeline—from edge-side data capture to cloud-based model training and deployment.
What You’ll Do:
Edge Pipeline Development: Architect and maintain low-latency inference pipelines using YOLO, BoT-SORT, and OpenCV to run reliably on edge hardware.
Cloud Infrastructure: Manage data flows between edge devices and GCP using rClone and Google Cloud Storage.
Data Ops: Streamline our annotation workflow using Label Studio (Dockerized) and curate high-quality datasets with FiftyOne.
Model Lifecycle: Leverage SAM 2 for advanced segmentation tasks and manage the full cycle of training, evaluation, and edge deployment.
System Integration: Develop robust, asynchronous backend services using FastAPI to connect our edge systems to the cloud.
Who You Are:
A pragmatic problem-solver who enjoys moving from prototype to production.
Experienced in navigating the trade-offs between edge hardware constraints and model performance.
Passionate about building scalable AI systems that solve real-world problems in the food industry.
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