Apple

AI Engineer – Algorithm Evaluation & Agentic Systems

Apple  •  Sunnyvale, CA (Onsite)  •  9 hours ago
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Job Description

How do we ensure Apple's next-generation AI products are robust, safe, and truly intelligent? Join the DAQ team to help answer that. We are seeking an AI Engineer specializing in algorithm evaluation and agentic systems design for advanced computer vision and video understanding algorithms.

What We Value
Production mindset: correctness, observability and maintainability
Ability to reason about system-level tradeoffs, not just model performance
Ability to balance experimentation speed with engineering rigor
Comfort working in ambiguous problem spaces and defining metrics from first principles
Clear communication of technical findings to both technical and non-technical audiences

Within the DAQ team, our core mission is to evaluate and elevate advanced visual technologies. As a key member of this group, you will lead the benchmarking and integration of state-of-the-art models for image and video understanding. Rather than focusing on core model training, you will apply your deep CV and ML expertise to rigorously test models in applied settings, uncover edge-case failure modes, and architect advanced agentic systems. If you are passionate about AI safety, robust evaluation, and building autonomous multi-modal workflows that bridge experimentation with production, we’d love to hear from you.

Preferred Qualifications

Demonstrated ability to lead technical evaluation strategies end-to-end, drive architectural decisions for testing infrastructure, and mentor engineers.
Strong foundation in statistics, including hypothesis testing, confidence intervals, and experimental design
Knowledge of reinforcement learning, planning, or decision-making systems
Experience evaluating multi-modal or multi-agent systems
Prior work on AI reliability, safety, or benchmarking

Minimum Qualifications

MS and a minimum of 3 years relevant industry experience
3+ years of applied experience in Machine Learning, Computer Vision, or AI System Evaluation
Solid ML Foundation: Deep understanding of core Machine Learning principles, including probability, statistics, data distributions, and model bias/variance. You can apply statistical rigor to ensure evaluation metrics are meaningful and reliable.
Computer Vision Expertise: Deep theoretical and practical understanding of Computer Vision (CV) and Vision-Language Models (VLMs). You must understand how Vision Transformers (ViTs), spatial-temporal modeling, and image/video processing work under the hood to effectively evaluate them.
Advanced Evaluation Skills: Proven track record of defining robust metrics/KPIs and designing rigorous evaluation frameworks for generative AI or foundation models. Deep experience with custom benchmark creation, automated regression testing, LLM/VLM-as-a-judge methodologies, and human-in-the-loop evaluation.
Agentic Systems: Experience building and evaluating LLM/VLM-powered agents, including tool use, multi-step reasoning, planning, and memory management workflows.
Failure Analysis: Strong intuition for probing ML models to discover edge cases, hallucinations, and performance bottlenecks in constrained environments. Be able to translate findings into actionable improvement recommendations.
Engineering Excellence: Strong proficiency in Python and experience with deep learning frameworks (PyTorch) for running inference, extracting embeddings, and building scalable evaluation pipelines.
Apple

About Apple

We’re a diverse collective of thinkers and doers, continually reimagining what’s possible to help us all do what we love in new ways. And the same innovation that goes into our products also applies to our practices — strengthening our commitment to leave the world better than we found it. This is where your work can make a difference in people’s lives. Including your own.

Apple is an equal opportunity employer that is committed to inclusion and diversity. Visit apple.com/careers to learn more.

Industry
Hardware & Semiconductors
Company Size
10,000+ employees
Headquarters
Cupertino, California
Year Founded
1976
Website
apple.com
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