Computer Vision Research Engineer (Image Restoration)

Zürich, Switzerland

Huawei Research Center Zürich

Huawei is a leading global provider of information and communications technology (ICT) infrastructure and smart devices.

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At Huawei Zurich Research Center, we are at the forefront of cutting-edge AI research and development, specializing in creating innovative solutions that push the boundaries of computer vision and deep learning. Our team is a diverse group of passionate researchers, engineers, and creatives dedicated to advancing the state of the art in AI. We are looking for a highly motivated and talented Computer Vision Research Engineer to join our team and lead our efforts in image restoration.

Key Responsibilities:

  • Conduct cutting-edge research in computer vision with a focus on image restoration, sensor fusion and time series classification.
  • Develop and implement deep learning models and algorithms to aid real-time on-device image restoration tasks.
  • Collaborate with cross-functional teams to integrate research outputs into products and services.
  • Publish research findings in top-tier conferences and journals.
  • Stay up-to-date with the latest advancements in computer vision, deep learning, and related fields.

Qualifications:

  • MSc/PhD in Electrical Engineering, Computer Science, or a related field, with a focus on computer vision, deep learning, signal processing, or a similar area.
  • Expertise in deep learning frameworks such as PyTorch or similar.
  • Extensive experience with time series forecasting, classification, or similar.
  • Proficiency in programming languages such as Python, C++, or similar.
  • Strong problem-solving skills and ability to work independently as well as in a team environment.
  • Excellent communication skills and the ability to present complex technical concepts clearly.

Preferred Qualifications:

  • Publication record in top-tier computer vision and AI conferences/journals (e.g., CVPR, ICCV, ECCV, NeurIPS, etc.).
  • Experience with image restorations tasks such as super-resolution, denoising, underwater image restoration, flare removal, or similar.
  • Experience with real-time processing and optimization of deep learning models for deployment.
  • Good understanding of how camera sensors, rolling-shutter and flicker sensors operate.
  • Familiarity with multi-modal training, 1D-2D sensor fusion and other advanced machine learning techniques.
  • Strong understanding of the theoretical foundations of deep learning and computer vision.
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Tags: Classification Computer Science Computer Vision Deep Learning Engineering Machine Learning NeurIPS PhD Python PyTorch Research

Perks/benefits: Conferences

Region: Europe
Country: Switzerland

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