Grab
Technology
DataScienceGeoMaps-Internship
Neural analysis suggests this role is
optimal for entry candidates.
“Data Science Geo Maps - Internship at Grab. Skills: Computer Vision, Deep Learning, Edge deployment. Adapt CV models. Improve CV models”
Industry & Context.
Full internship, 8 hours/day, 3 months
What They're Looking For.
Must Have
Pursuing or completed degree, Familiarity with Python, Solid ML fundamentals, Solid deep learning fundamentals, Solid computer vision fundamentals, Proficiency in English
Nice to Have
Interest in embedded systems, Interest in edge deployment, Interest in model optimization, Exposure to quantization, Exposure to pruning, Exposure to distillation
What You'll Do.
Apply model compression
Profile on-device performance
Build efficient inference pipelines
Full Job Description
Get to know the Team The Data Science (Geo Vision) team focuses on improving maps and building map-based intelligence, including localization, routing, and traffic forecasting. We use Computer Vision, Information Retrieval, and Large Language Models (LLMs) to process diverse signals like images, text, and GPS probes. We are looking for an engineer who excels at building the scalable software foundations that power these advanced models. The Data Science (Geo Vision) team improves Grab's maps and builds map-based intelligence (localization, routing, travel-time, traffic forecasting) using computer vision and deep learning on images, video, and GPS signals. As a Data Science intern, you'll focus on bringing computer vision models to embedded/edge platforms for map creation — learning how perception models are optimized and deployed to run efficiently and in real time on resource-constrained hardware, alongside senior data scientists. What you'll work on * Help adapt and improve CV models (detection, segmentation, tracking) to run on resource-constrained edge devices. * Apply model compression — quantization, pruning, knowledge distillation — to shrink models while preserving accuracy. * Profile on-device performance (latency, memory, power) and help build efficient inference pipelines. * Support training and evaluation, and use AI agents/tooling within the team's quality guidelines. What you'll gain: hands-on experience taking deep learning models to on-device deployment, plus skills in model optimization and real-time edge performance. ## Qualifications * Pursuing or recently completed a degree in Computer Science, Electrical Engineering, or a related field. * Familiarity with Python and some of: PyTorch/TensorFlow, NumPy, OpenCV, scikit-learn. * Solid ML and deep learning / computer vision fundamentals. * Interest in or exposure to embedded systems, edge deployment, or model optimization (quantization, pruning, distillation) — a strong plus. * Proficiency in English
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