
Machine Learning Engineer - Video Generation Models
San Diego Metro Area, CAJobSeen 3 days agoSeen in employer's feed 3 days ago
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Job overview
Apple is seeking a Machine Learning Engineer to develop video generation models, handling the full lifecycle from pre‑training and fine‑tuning to efficient inference. The role involves designing training recipes, running large distributed GPU jobs, improving model performance, and collaborating with cross‑functional engineers and researchers to bring advanced capabilities to Apple products.
Skills & qualifications
Skills
Qualifications
Full job description
Role Number: 200682734
Summary
We are hiring a machine learning engineer with deep, hands-on experience training large generative models to help build our video generation models. You will work across pre-training, fine-tuning, and inference optimization, from designing the training recipe and running large distributed training jobs through making the resulting models efficient to run. As a member of the team, you will develop fundamental model capabilities and collaborate with engineers and researchers across Apple to advance our products.
Description
As a member of our fast-paced group, you'll have the unique and rewarding opportunity to shape upcoming products from Apple. We are looking for someone who has taken large generative models through the full lifecycle, from pre-training through fine-tuning and efficient inference, and can bring that depth to video, with the engineering skills to make that work reproducible and production-ready.
Minimum Qualifications
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Bachelor's degree in Electrical Engineering, Computer Science, Computer Engineering, or relevant degree, and a minimum of 3 years relevant industry experience
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Experience with large-scale generative model training for video generation
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Experience running distributed training across multi-node GPU clusters
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Strong software engineering skills in Python, with proficiency in a modern deep learning framework such as PyTorch or JAX
Preferred Qualifications
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MS or PhD in Electrical Engineering, Computer Science, or Computer Engineering
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Experience with video generation architectures, including diffusion or autoregressive models, temporal consistency, and long-horizon generation
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Experience contributing to major foundation or base model pre-training efforts, including scaling laws and transferring training recipes across model and training scales
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Experience with large-scale training operations, including parallelism strategies and diagnosing loss instability, divergence, or throughput regressions
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Experience improving and adapting trained models, such as step distillation, few-step sampling, or quantization for inference efficiency, and supervised fine-tuning, preference optimization, or knowledge distillation for quality
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Ability to work through ambiguity, collaborate across teams and disciplines, and communicate complex technical results clearly
Apple is an equal opportunity employer that is committed to inclusion and diversity. We seek to promote equal opportunity for all applicants without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, disability, Veteran status, or other legally protected characteristics.
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