AIML - Foundation Model Post-Training Research Scientist

Apple Inc.

Zürich

Vor Ort

CHF 180.000 - 260.000

Vollzeit

Vor 12 Tagen
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Zusammenfassung

Apple Inc. in Switzerland seeks a senior AIML Foundation Model Post-Training Research Scientist to advance reinforcement learning and agentic reasoning for foundation models powering Apple Intelligence products.

You will lead research and engineering across multi-modal architectures, evaluation, and deployment at scale, collaborating with teams in Europe, New York, Seattle and Cupertino to turn ideas into production-ready capabilities. This role combines deep theory with practical impact.

Qualifikationen

  • PhD/Master's degree or equivalent experience in Computer Science, Computer Engineering, or a closely related field.
  • Deep expertise in generative AI architectures with hands-on experience training and scaling LLMs and/or multi-modal foundation models.
  • Industry experience in developing, training, and deploying large-scale ML systems, with emphasis on model performance optimization.
  • Demonstrated industry experience on developing agentic capabilities for modern foundation models.

Aufgaben

  • Lead transformative progress in large-scale language models with a focus on reinforcement learning.
  • Develop and apply RL techniques to train and refine foundation models across multi-modal architectures.
  • Collaborate with researchers and systems engineers to advance deployment to billions of devices.
  • Design, train, and optimize LLMs and multi-modal models at scale.

Kenntnisse

LLM training
Multi-modal models
Reinforcement learning
Agentic reasoning
Python
PyTorch
JAX
Model scaling

Ausbildung

PhD or Master's in CS/CE or related field

Tools

PyTorch
JAX

Jobbeschreibung

AIML - Foundation Model Post-Training Research Scientist

Ready to transform how billions of people interact with technology? Apple's Core Foundation Models team is driving the intelligence that powers experiences across billions of devices worldwide-and we're looking for exceptional talent to join us! Join our Europe-based applied ML team as we build the next generation of Apple's foundation models, pushing the boundaries of agentic capabilities to enable new products and experiences for our customers.As a senior member of the team, you will work closely with researchers and systems engineers to advance our foundation models on capabilities critical to Apple Intelligence products. You'll collaborate with teams across Apple's engineering hubs—including New York, Seattle, and Cupertino to push the frontier of agentic capabilities such as coding, software engineering, device use, ui understanding and navigation, agentic search, and more. If you thrive at the intersection of reinforcement learning, reasoning, and agentic AI - and love turning research into products used by billions - this is the role for you.

Description

As a core member of our AI team, you will lead transformative progress in large-scale language models with a strong focus on reinforcement learning. Your mission is to push the boundaries of planning, reasoning, and agentic intelligence by developing and applying RL techniques to train and refine next-generation foundation models. You'll work across the entire AI development pipeline-from designing multi-modal architectures to advancing decision-making, evaluation, and large-scale deployment to billions of devices worldwide.We are seeking a pioneering technical leader with a proven track record in building and scaling language models who is passionate about harnessing reinforcement learning to unlock new levels of reasoning, adaptability, and autonomy in AI.

Minimum Qualifications
  • PhD/Master's degree or equivalent experience in Computer Science, Computer Engineering, or a closely related field.
  • Deep expertise in generative AI architectures, with hands-on experience training and scaling large language models (LLMs) and/or multi-modal foundation models.
  • Industry experience in developing, training, and deploying large-scale ML systems, with emphasis on model performance optimization.
  • Demonstrated industry experience on developing agentic capabilities for modern foundation models.
Preferred Qualifications
  • Proficiency in Python and modern ML frameworks (PyTorch/JAX).
  • Proven ability to analyze data, diagnose bottlenecks, and optimize large-scale models for performance and efficiency, with creativity in solving complex technical challenges.
  • Strong critical thinking, collaboration, and communication skills, with the ability to convey complex concepts to both technical and non-technical stakeholders.
  • Background in deep learning and reinforcement learning, including practical experience applying these methods to LLMs and foundation models.
  • Demonstrated industry experience delivering ML-driven product features at scale.
  • Proven record in designing, training, and optimizing LLMs and/or multi-modal foundation models at scale.
  • Expert-level understanding of machine learning theory and practice, with specialization in generative modeling and large-scale architectures.
  • Research or applied experience in decision-making, reinforcement learning, and agentic reasoning.
  • Strong research track record, with peer-reviewed publications at leading AI/ML or NLP venues (e.g., NeurIPS, ICML, ICLR, ACL).

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.

At Apple, we believe accessibility is a fundamental human right. You'll find that idea reflected in everything here - in our culture, our benefits and our digital tools. By welcoming as many perspectives as possible, we help you build a career where you feel like you belong. Learn about accessibility in Apple's workplace

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