Sr. Machine Learning Engineer, Speech LLM Evaluation
Apple Cupertino, California, United States
Computers and Electronics Manufacturing · 10,001+ employees
About the role
You will own the data and metrics foundation for evaluating speech LLMs across accuracy, robustness, and conversational quality. This involves building evaluation datasets and designing automated judges to ensure models meet rigorous standards before deployment.
What they look for
Requirements
Candidates must have a bachelor's degree in Computer Science or a related field and experience with speech or audio evaluation pipelines. Proficiency in Python and familiarity with LLM evaluation techniques are essential for this role.
Full description
Join the team redefining what a deeply personal and integrated assistant can be.
As part of the Siri organization, you will help shape one of the world's most widely used AI assistants, powered by our next-generation of Apple Intelligence, with capabilities like personal context understanding and on-screen awareness, built with privacy from the ground up. Your work will have direct, meaningful impact for users across iOS, iPadOS, macOS, watchOS, and visionOS.
Our Speech Evaluation team sits at the center of Apple's ASR, TTS, and real-time conversational AI efforts, partnering directly with the modeling teams. We're growing the team to take on a role focused specifically on evaluating audio LLMs: designing the datasets that stress-test them and the metrics that decide whether they're ready. You'll help define how Apple measures a new class of models that listen, speak, and reason.
This is a rare opportunity to build at the intersection of cutting-edge AI and human-centered design, shipping technology that is centered around users and their needs.
Description
This role owns the data and metrics foundation for evaluating speech LLMs (e.g., real-time speech understanding and generation models) across accuracy, robustness, and conversational quality. You'll build and curate evaluation datasets that reflect real usage — from personalized named-entity queries to multi-turn fluid conversations — and design the metrics and automated judges that turn model outputs into actionable, trustworthy signal. You'll work closely with modeling, infrastructure, and product partners to make sure every new model is evaluated quickly, consistently, and at the right level of rigor before it reaches customers.
Minimum Qualifications
Bachelor's degree in Computer Science, Electrical Engineering, or a related field, or equivalent practical experience. Experience building or working with text, speech or audio evaluation pipelines and metrics. Proficiency in Python and experience building data processing pipelines at scale. Experience curating or annotating datasets for machine learning evaluation or training. Working knowledge of statistics as applied to measuring model performance and interpreting evaluation results. Familiarity with large language model evaluation techniques, including automated (LLM-as-judge) and human evaluation methods. Strong written and verbal communication skills, with the ability to explain evaluation results to both technical and non-technical audiences.
Preferred Qualifications
Experience evaluating audio-native or multimodal (speech-in, speech-out) large language models. Experience designing or running human evaluation studies (e.g., side-by-side comparisons, MOS ratings) at scale. Familiarity with personalization and named-entity evaluation challenges in speech systems. Experience with multilingual or international audio dataset development. Experience with distributed data processing frameworks (e.g., Spark) for large-scale audio dataset generation. Publication record or demonstrated contributions in speech, audio ML, or NLP evaluation.
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