Staff Machine Learning Engineer, Siri Runtime Systems and Interaction

Apple

Zürich

Vor Ort

CHF 180.000 - 240.000

Vollzeit

vor 2 Stunden
Sei unter den ersten Bewerbenden
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Zusammenfassung

Apple in Zürich invites a Staff Machine Learning Engineer to lead the development of audio and video generation capabilities for multimodal experiences across its products. You will shape the technical vision, mentor engineers, and collaborate with research, product, design and infrastructure teams to translate cutting-edge techniques into shipped features while balancing quality, latency, and scalability.

Role requires hands-on expertise in generative modeling, strong software engineering, and

Qualifikationen

  • Master's or PhD in CS/EE/ML or equivalent practical experience.
  • Hands-on experience with generative audio/video architectures.
  • Experience leading complex projects from research to production.
  • Experience evaluating generative models with objective and perceptual metrics.

Aufgaben

  • Design end-to-end systems for generating synthetic audio and video for agent interaction.
  • Lead generative AI projects from research prototype to production deployment.
  • Establish evaluation, perceptual quality, and monitoring of outputs.
  • Drive multimodal generation architecture balancing quality, latency and scale.
  • Mentor engineers and set ML engineering practices across the team.
  • Collaborate with research, product, design and infra to ship features.
  • Stay current with diffusion, autoregressive, and end-to-end techniques.

Kenntnisse

Generative modeling
Leadership
Collaboration
ML deployment

Ausbildung

Master's degree or PhD in Computer Science, Electrical Engineering, Machine Learning, or related field

Tools

PyTorch
TensorFlow
Distributed training

Jobbeschreibung

Summary

As part of Siri Attention and Invocation, we collaborate to deliver the next revolution in human‑computer interaction, to inspire and create groundbreaking technology for large‑scale systems spanning speech, vision, and generative AI to overcome real‑world challenges through innovation and user‑centered design that improves the daily experience of millions of our customers.

Description

We are seeking an exceptional Staff Machine Learning Engineer to lead the development of audio and video generation capabilities. In this role, you will drive the technical vision for generating realistic, expressive synthetic speech and visual representations, mentor senior and junior engineers, and shape the roadmap for multimodal generative experiences across our products.

Responsibilities
  • Design and implement end‑to‑end systems for generating synthetic audio (speech, acoustics, sound) and/or video for agents interaction
  • Lead complex generative AI projects from research prototype through large‑scale production deployment
  • Establish best practices for model evaluation, perceptual quality assessment, and monitoring of generative outputs
  • Drive technical decisions and architecture for multimodal (audio/video) generation systems, balancing quality, latency, and scalability
  • Identify high‑impact opportunities where advances in generative modeling can meaningfully improve agents experiences
  • Collaborate closely with research, product, design, and infrastructure teams to translate cutting‑edge techniques into shipped features
  • Mentor and provide technical guidance to engineers across the team, raising the bar for ML engineering practices
  • Stay current with emerging techniques in generative modeling (e.g., diffusion, autoregressive, end‑to‑end architectures) and evaluate their applicability to our systems
Minimum Qualifications
  • Master's or PhD in Computer Science, Electrical Engineering, Machine Learning, or a related field, or equivalent practical experience
  • Deep hands‑on experience with generative audio and/or video architectures (e.g., diffusion models, autoregressive models, GANs, VAEs, end‑to‑end neural synthesis)
  • Demonstrated ability to lead complex, ambiguous projects from research through production, and to make sound technical tradeoffs under real‑world constraints (quality, latency, compute)
  • Experience evaluating generative model outputs, including both objective metrics and perceptual/subjective quality assessment
Preferred Qualifications
  • Proven experience building and shipping machine learning systems in production, with significant focus on generative modeling
  • Excellent collaboration and communication skills, with a track record of working across research, engineering, and product teams
  • Strong software engineering skills, with experience designing scalable ML systems and pipelines (e.g., Python, PyTorch/TensorFlow, distributed training infrastructure)
  • Experience with speech synthesis (TTS), voice conversion, audio acoustics/background modeling, or conversational AI systems
  • Experience with generative video/animation techniques (e.g., facial animation, lip‑sync, avatar rendering, video diffusion)
  • Publications in generative modeling, speech, audio, or computer vision at top‑tier venues (e.g., NeurIPS, ICML, ICASSP, CVPR, Interspeech)
  • Experience deploying real‑time or low‑latency generative models at scale
  • Familiarity with multimodal modeling (joint audio‑visual generation, cross‑modal conditioning)
  • Prior experience mentoring engineers or leading technical direction for a team

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

Role Number: 200680814-4170

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