AIML Researcher - Foundation Model, Post-Training

Apple Inc.

Zürich

Vor Ort

CHF 140.000 - 210.000

Vollzeit

Vor 7 Tagen
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Zusammenfassung

Apple Inc. in Zürich seeks an AIML Researcher to shape the future of large-scale foundation models, focusing on post-training capabilities that power Apple products with intelligent, privacy-forward experiences.

You will tackle challenges in instruction following, tool use, deep reasoning, and architectural adaptation, collaborating with a fast-growing team of experts to explore new training strategies and evaluation methodologies.

Qualifikationen

  • Deep learning expertise with LLMs, post-training, or reinforcement learning.
  • Proficient Python and DL frameworks (PyTorch or JAX).
  • Masters/PhD or equivalent practical experience in Computer Science, ML, or related field.

Aufgaben

  • Design end-to-end post-training strategies (including Reinforcement Learning) to unlock model capacities toward specific model behaviours.
  • Pioneer novel algorithms for preference optimization, model steering, and safety.
  • Drive data strategy by researching methods for high-quality human and synthetic data generation, automated data filtering, and curriculum learning to improve instruction following and reasoning.
  • Design robust evaluation methodologies to measure model helpfulness, factuality, and utility, moving beyond static benchmarks to accurately capture real-world performance.
  • Partner closely with pre-training teams to inform architecture choices, and with product teams to translate user requirements into model capabilities.

Kenntnisse

LLMs & RL
Python & DL frameworks
Post-training expertise

Ausbildung

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

Jobbeschreibung

AIML Researcher - Foundation Model, Post-Training

We are a tight-knit group of researchers and engineers responsible for building large scale frontier foundation models at Apple. We believe the most interesting breakthroughs in deep learning happen when we bridge the gap between raw model capability and user-centric utility.

Description

In this role, you will play a critical role shaping the future of our LLM efforts, specifically in transforming our models into highly capable, intelligent assistants that power billions of Apple products. You will tackle core training challenges in instruction following, tool use, deep reasoning, and architectural adaption — designing models that deliver magical, deeply integrated, and privacy-forward experiences across the Apple ecosystem. You will work alongside a fast-growing team of world-class experts to explore novel training strategies, architectural adaptations, and advanced evaluation methodologies.

Responsibilities
  • Design and iterate on end-to-end post-training strategies (including Reinforcement Learning) to unlock model capacities toward achieving specific model behaviours.
  • Pioneer novel algorithms for preference optimization, model steering, and safety.
  • Drive our data strategy by researching methods for high-quality human and synthetic data generation, automated data filtering, and curriculum learning to improve instruction following and reasoning.
  • Design robust evaluation methodologies to measure model helpfulness, factuality, and utility, moving beyond static benchmarks to accurately capture real-world performance.
  • Partner closely with pre‑training teams to inform architecture choices, and with product teams to translate user requirements into model capabilities.
Minimum Qualifications
  • Demonstrated expertise in deep learning with a focus on LLMs, post‑training, or reinforcement learning, backed by a strong record of academic or real‑world accomplishments in these or closely related domains.
  • Proficient programming skills in Python and a major deep learning framework such as JAX or PyTorch.
  • Masters/PhD, or equivalent practical experience, in Computer Science, Machine Learning, or a related technical field.
Preferred Qualifications
  • Experience training state‑of‑the‑art large models at scale, with familiarity in distributed training challenges and trade‑offs.
  • Experience improving model performance on complex reasoning tasks (math, coding, logic).
  • Experience with various transformer architectures and its transformations.
  • Strong communication skills and a passion for working cross‑functionally across Research and Product teams.

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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