Machine Learning Systems Engineer - Video Computer Vision

Apple Inc.
Mount Laurel Township, NJ, United States
1 day ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Experience level
Experienced
Experience required
3 years minimum
Working hours
Regular working hours

Tech stack

Artificial Intelligence Artificial Neural Networks Computer Vision C++ (Programming Language) Computer Programming Core Foundation Data Cleansing Python (Programming Language) Machine Learning Performance Tuning Graphics Processing Unit (GPU) Pytorch
+4 more
Large Language Models Information Technology Production Code Machine Learning Operations

Job description

The incredible potential of multimodal foundation models and large language models has unlocked machine learning applications that were previously thought infeasible. The Video Computer Vision (VCV) group is looking for a highly motivated and skilled Machine Learning Systems Engineer to help us ship cutting-edge computer vision technology on Apple devices.

The VCV organization has pioneered groundbreaking features like FaceID/FaceKit, Gaze/Hand Gesture Control, Body Tracking, and 2D/3D Scene Understanding fundamentally changing how millions of users interact with technology. We seamlessly balance research and product requirements to deliver pioneering, Apple-quality experiences. By innovating across the full stack and partnering closely with hardware, software, and AI teams, we shape future products and bring our architectural vision to life., As a member of the Video Computer Vision team, you will train, evaluate, and deploy purpose-built vision models on Apple hardware. You will develop innovative techniques to optimize model performance, efficiency, and scalability, ensuring a seamless user experience under strict on-device constraints.

Requirements

  • Bachelor’s degree in Computer Science, Machine Learning, or a related discipline, and 3+ years of relevant industry experience.
  • Strong ML fundamentals.
  • Proven track record of writing high-quality production code for shipped on-device CV/ML features deployed on embedded platforms
  • Solid understanding of operating system fundamentals and extensive programming experience in Python and C++.
  • Hands-on experience with PyTorch and familiarity with the end-to-end ML lifecycle (data preprocessing, training, evaluation, and edge deployment).
  • Experience with Supervised Fine-Tuning (SFT) pipelines to adapt vision and multimodal foundation models for specialized, on-device downstream tasks.
  • Robust foundational understanding of machine learning architectures, specifically Multimodal LLMs and the integration of ML components into complex production systems., * Programming experience with Swift and familiarity with CoreML, CoreFoundation, and RealityKit frameworks.
  • Fundamental knowledge of real-time video pipelines, image transformations, and rendering loops.
  • Experience optimizing models for neural network accelerators (e.g., Apple Neural Engine or mobile GPUs).

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Good distractions

Talks and stories from around this role — technically off-topic, practically not.

4:13 min

Implementing machine learning with Core ML and Vision

MIlan Todorović MIlan Todorović · World Congress 2025

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Practical applications and use cases for computer vision

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Balancing model training with data preparation realities

Lukas Kölbl · LIVE

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Preventing remote code execution in PyTorch models

Balázs Kiss · World Congress 2023

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Introduction to the Apple Vision framework

Milan Todorovic · LIVE

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Overcoming software challenges and future computer vision project integrations

Iulia Feroli Iulia Feroli · World Congress 2026 Europe

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