Machine Learning Algorithm Engineer - Auto Focus

Cupertino, CA, US • Posted 2 hours ago • Updated 2 hours ago
Full Time
On-site
Fitment

Dice Job Match Score™

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Job Details

Skills

  • Rapid Prototyping
  • Roadmaps
  • User Experience
  • System On A Chip
  • Computer Hardware
  • Firmware
  • Algorithms
  • Mentorship
  • Computer Science
  • Electrical Engineering
  • Network
  • PyTorch
  • TensorFlow
  • Software Engineering
  • Python
  • C
  • Machine Learning (ML)
  • FOCUS
  • Sensors
  • Fusion
  • Training
  • Optics
  • Evaluation
  • Estimating
  • Innovation
  • Publications
  • Computer Vision
  • Patents

Summary

As a technical leader within the team, you will own the end-to-end architecture, rapid prototyping, and productization of advanced machine learning-based auto-focus algorithms. You will maneuver through ambiguity independently to drive the long-term ML roadmap for AF, spearheading the design of novel learning-based systems integrated on Apple camera platforms which achieve seamless auto-focus user experience in any scene condition in both bright and low light. You will determine methods and procedures on complex projects, frequently acting as the representative for your area while leading cross-functional work to deploy enhanced machine learning based AF features. This includes coordinating the activities of sub-teams to create sophisticated architecture, training and tooling for machine learning based auto-focus development.

Description

You will partner deeply with the SOC architecture team to influence future silicon designs, the hardware team to evaluate new camera components impacting auto-focus, and the firmware team to optimize system-level flows for machine learning algorithms. The ideal candidate is a visionary problem-solver who thinks originally, resolves highly complex issues in creative ways, and is a proven mentor capable of inspiring innovation among others.

Minimum Qualifications

MS in Computer Science, Machine Learning, Electrical Engineering, or a related field.

Experience in defining datasets for machine learning network training on low-level vision tasks as well as dataset curation and data augmentation strategies for robust training.

Expertise in modern machine learning (ML) frameworks and libraries, specifically PyTorch or TensorFlow/TFLite/LiteRT.

Strong software engineering and architectural skills, highly skilled at coding in Python and C.

Preferred Qualifications

Experience with machine learning for practical low level computer vision applications including one or more of the following areas: auto-focus, stereo disparity/depth, depth estimation, defocblur estimation, optical flow estimation, sensor fusion.

Experience with defining datasets for training temporal networks.

Good knowledge of optics (Point Spread Functions, Depth-of-Field, etc.) and image quality metrics impacting critical image sharpness evaluation (Modulation Transfer Function, Spatial Frequency Response, Acutance, Blur/Defocus Estimation etc).

Track record of pioneering innovation comprising publications in top-tier computer vision conferences (e.g., CVPR, ICCV, ECCV) and/or patents.
Employers have access to artificial intelligence language tools (“AI”) that help generate and enhance job descriptions and AI may have been used to create this description. The position description has been reviewed for accuracy and Dice believes it to correctly reflect the job opportunity.
  • Dice Id: 90733111
  • Position Id: d7bdf6968f193f467a32cd89ca522348
  • Posted 2 hours ago
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