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Home›Jobs›Apple›AIML - Machine Learning Research Engineer, Generative AI
Apple

About Apple

The personal technology company redefining user experience

🏢 Tech, Hardware👥 1001+ employees📅 Founded 1976📍 Cupertino, CA⭐ 4.2
B2CB2BHardwareSaaSTelecommunicationseCommerce

Key Highlights

  • Market cap of $3 trillion as of 2022
  • Over 1 billion active devices worldwide
  • Comprehensive medical plans including mental healthcare
  • Paid parental leave and gradual return-to-work program

Apple Inc. (NASDAQ: AAPL), headquartered in Cupertino, CA, is the world's most valuable company with a market capitalization of $3 trillion as of 2022. Known for its iconic products such as the iPhone, iPad, and Mac, Apple serves over 1 billion active devices globally. The company has a strong commi...

🎁 Benefits

Apple offers comprehensive medical plans covering physical and mental healthcare, paid parental leave, and a gradual return-to-work program. Employees...

🌟 Culture

Apple's culture emphasizes an obsessive focus on user experience and consumer privacy, setting it apart from competitors. The company promotes inclusi...

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Apple

AIML - Machine Learning Research Engineer, Generative AI

Apple • Zurich, Zurich, Switzerland

Posted 4 months ago🏛️ On-SiteMid-LevelMachine learning engineer📍 Zurich
Apply Now →

Job Description

Join Apple’s Generative AI team in Zurich as a Machine Learning Engineer specializing in foundation model post-training! Our team advances reinforcement learning (RL) for agentic tool use, planning and reasoning to enhance Apple’s foundation models. Our work directly shapes Apple Intelligence features such as Siri—impacting billions of users—while contributing to state-of-the-art research. You’ll collaborate with a dedicated group of researchers in Zurich and work closely with Apple’s core Foundation Model teams in Cupertino and NY.

Description

In our team, you will: - Develop and scale RL methods to improve reasoning, instruction following, multi-turn dialogue, and reduce hallucinations in large language models. - Design and train agents with tool use, planning, and API integration to reliably accomplish tasks. - Build and refine reward models, evaluators, datasets, and simulation environments (e.g., for RLHF, RLAIF, and RLVF). - Run large-scale experiments, analyze results, and translate findings into both research contributions and practical improvements for Apple Intelligence. - Collaborate within a Europe-based team of ~35 RL/ML experts, coordinating closely with Apple’s foundation model groups in the U.S. We value researchers eager to explore the space between fundamental research and applied work—with opportunities to contribute to both scientific progress and real-world applications!

Minimum Qualifications

MSc, PhD, or equivalent research/industry experience in Computer Science, Machine Learning, Electrical Engineering, or a related field. Strong background in reinforcement learning and deep learning, with hands-on experience training large-scale models, particularly LLMs. Proficiency in Python and modern ML frameworks (e.g., PyTorch, JAX), with demonstrated experience in distributed training. Ability to collaborate in interdisciplinary teams and clearly communicate complex concepts to both technical and non-technical partners.

Preferred Qualifications

Publications in top ML/AI venues, or equivalent contributions through open-source or impactful industry work. Hands-on experience with tool use, planning, retrieval, and agentic integrations for LLMs. Experience with data curation, evaluation frameworks, and safety/guardrail methods. Ability to design and implement experiments at scale, and to develop innovative approaches to challenging problems.

Eeo Content

At Apple, we’re not all the same. And that’s our greatest strength. We draw on the differences in who we are, what we’ve experienced, and how we think. Because to create products that serve everyone, we believe in including everyone. Therefore, we are committed to treating all applicants fairly and equally. We will work with applicants to make any reasonable accommodations.

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