Machine Learning Engineer - Computer Vision & Data Systems

Washington, WA, US • Posted 13 hours ago • Updated 32 minutes ago
Full Time
On-site
Fitment

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Job Details

Skills

  • Innovation
  • Privacy
  • Real-time
  • Scalability
  • Product Requirements
  • Prototyping
  • Deep Learning
  • 3D Computer Graphics
  • Supervised Learning
  • PyTorch
  • TensorFlow
  • Extract
  • Transform
  • Load
  • Data Validation
  • Python
  • C++
  • Algorithms
  • Data Processing
  • Distributed Computing
  • Apache Spark
  • Research
  • Computer Vision
  • Reasoning
  • Workflow
  • Prompt Engineering
  • Machine Learning (ML)
  • Continuous Improvement
  • Data Quality
  • Evaluation
  • GPU
  • Optimization
  • Training
  • Collaboration

Summary

At Apple, we are dedicated to creating technologies that enrich people's lives. Our teams develop products and experiences that empower millions of users globally, by combining world-class engineering with a deep commitment to innovation, quality, and privacy.

We are seeking a Machine Learning Engineer with strong expertise in computer vision and large-scale data processing. In this role, you will contribute to the development of next-generation real-time sensing and data intelligence systems by designing algorithms, building scalable data pipelines, and collaborating with multi-functional teams to deliver high-impact, production-quality solutions.

Description

As a Machine Learning Engineer, you will:

- Design, build, and maintain large-scale data processing workflows, ensuring efficiency, scalability, and reliability across diverse data sources and modalities.

- Develop and optimize computer vision models that power core product experiences, including areas such as image understanding, multi-view geometry, 3D reconstruction, and visual recognition.

- Partner closely with engineering, research, and data teams to translate product requirements into technical solutions. This includes prototyping models, running large-scale experiments, improving data quality, and ensuring seamless integration of algorithms into production systems.

- Explore emerging areas such as LLM-based agents, retrieval-augmented systems, and tool-oriented reasoning to improve internal workflows or data operations.

Minimum Qualifications

Strong foundation in computer vision, including experience with deep learning-based vision models and at least one area such as detection, segmentation, 3D vision, geometric methods, tracking, or self-supervised learning.

Hands-on experience developing machine learning models using frameworks such as PyTorch or TensorFlow.

Experience building or optimizing large-scale data pipelines (e.g., distributed ETL, dataset generation, annotation workflows, data validation, or high-throughput processing).

Proficiency in Python or C++ for algorithm development and data processing.

Experience working with distributed computing frameworks (e.g., Spark, Ray, or equivalent).

Preferred Qualifications

PhD in a relevant field with research directly related to computer vision, large-scale data systems, or multimodal learning.

Experience designing or evaluating agentic systems, including LLM-powered tools, RAG pipelines, or automated data reasoning workflows.

Familiarity with prompt engineering, tool-use patterns, and LLM model behavior.

Experience deploying ML models at scale, including monitoring, evaluation, and continuous improvement.

Knowledge of data quality assessment, dataset curation methodologies, and evaluation frameworks.

Experience with GPU-based optimization, large-batch training, or distributed training.

Strong multi-functional collaboration skills and the ability to lead technical initiatives.
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: 980cce0cf989045b0dfabed075309b5
  • Posted 13 hours ago
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