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Machine Learning Engineer - Intern

Apple

Software and Technology Jobs

Machine Learning Engineer - Intern

full-timePosted: Jul 29, 2025

Job Description

As part of Apple's AI and Machine Learning org, we inspire and create groundbreaking technology for large-scale ML systems, computer vision, natural language processing, and multi-modal understanding. The Data and Machine Learning Innovation (DMLI) team is looking for a passionate Machine Learning Engineer to explore new methods, challenge existing metrics or protocols, and develop new insightful practices that will change how we understand data and overcome real-world ML challenges. As a team member, you will work on some of the most ambitious technical challenges in the field. Your role will involve collaborating closely with our team of machine learning researchers, engineers, and data scientists. Together, you will spearhead groundbreaking research initiatives and develop transformative products designed to create a significant impact for billions of users worldwide. As a Machine Learning (ML) Engineer, you will be entrusted with the critical role of innovating and applying state-of-the-art research in ML to tackle complex data problems. The solutions you develop will significantly impact future Apple products and the broader ML development ecosystem. You will work with a multidisciplinary team to actively participate in the data-model co-design and co-development practice. Your responsibilities will extend to the design and development of a comprehensive data curation framework. You will also create robust model evaluation pipelines, integral to the continuous improvement and assessment of ML models. Additionally, your role will entail an in-depth analysis of collected data to underscore its influence on model performance. Furthermore, you will have the opportunity to showcase your groundbreaking research work by publishing and presenting at premier academic venues. Your work may span a variety of topics, including but not limited to: • Designing and implementing semi-supervised, self-supervised representation learning techniques for maximizing the power of both limited labeled data and large-scale unlabeled data. • Developing evaluation protocols centered on the end-to-end user experience, with a focus on anticipating potential failure modes, edge cases, and anomalies. • Employing data selection techniques such as novelty detection, active learning, and core-set selection for diverse data types like images, 3D models, natural language, and audio. • Uncovering patterns in data, setting performance targets, and leveraging modern statistical and ML-based methods to model data distributions. This will aid in reducing redundancy and addressing out-of-distribution samples.

Locations

  • Beijing, Beijing, China 100045

Salary

Estimated Salary Rangemedium confidence

600,000 - 1,200,000 INR / yearly

Source: ai estimated

* This is an estimated range based on market data and may vary based on experience and qualifications.

Skills Required

  • Machine Learning Engineeringintermediate
  • Computer Visionintermediate
  • Natural Language Processingintermediate
  • Multi-modal Understandingintermediate
  • Semi-supervised Learningintermediate
  • Self-supervised Learningintermediate
  • Representation Learningintermediate
  • Evaluation Protocol Designintermediate
  • Novelty Detectionintermediate
  • Active Learningintermediate
  • Core-set Selectionintermediate
  • Data Analysisintermediate
  • Statistical Methodsintermediate
  • ML-based Methodsintermediate
  • Data Distribution Modelingintermediate
  • Data Curationintermediate
  • Model Evaluationintermediate
  • Data-model Co-designintermediate
  • Research Publicationintermediate
  • Academic Presentationintermediate
  • Collaboration with Multidisciplinary Teamsintermediate

Required Qualifications

  • Currently pursuing a PhD degree or equivalent experience in Machine Learning, Computer Vision, Natural Language Processing, Data Science, Statistics or related areas. (experience)
  • Proven expertise in machine learning with a passion for data-centric machine learning. (experience)
  • Experience with natural language processing (NLP), and large language models, such as BERT, GPT, or Transformers. (experience)
  • Strong programming skills and hands-on experience using the following languages or deep learning frameworks: Python, PyTorch, or Jax. (experience)

Preferred Qualifications

  • Staying on top of emerging trends in LLMs (experience)
  • Strong problem-solving and communication skills (experience)
  • Demonstrated publication record in relevant conferences (e.g. NeurIPS, ICML, ICLR, CVPR, etc) is a plus (experience)
  • Available for 9+ months for internship (experience)

Responsibilities

  • As a Machine Learning (ML) Engineer, you will be entrusted with the critical role of innovating and applying state-of-the-art research in ML to tackle complex data problems. The solutions you develop will significantly impact future Apple products and the broader ML development ecosystem.
  • You will work with a multidisciplinary team to actively participate in the data-model co-design and co-development practice. Your responsibilities will extend to the design and development of a comprehensive data curation framework. You will also create robust model evaluation pipelines, integral to the continuous improvement and assessment of ML models. Additionally, your role will entail an in-depth analysis of collected data to underscore its influence on model performance.
  • Furthermore, you will have the opportunity to showcase your groundbreaking research work by publishing and presenting at premier academic venues.
  • Your work may span a variety of topics, including but not limited to:
  • * Designing and implementing semi-supervised, self-supervised representation learning techniques for maximizing the power of both limited labeled data and large-scale unlabeled data.
  • * Developing evaluation protocols centered on the end-to-end user experience, with a focus on anticipating potential failure modes, edge cases, and anomalies.
  • * Employing data selection techniques such as novelty detection, active learning, and core-set selection for diverse data types like images, 3D models, natural language, and audio.
  • * Uncovering patterns in data, setting performance targets, and leveraging modern statistical and ML-based methods to model data distributions. This will aid in reducing redundancy and addressing out-of-distribution samples.

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Apple logo

Machine Learning Engineer - Intern

Apple

Software and Technology Jobs

Machine Learning Engineer - Intern

full-timePosted: Jul 29, 2025

Job Description

As part of Apple's AI and Machine Learning org, we inspire and create groundbreaking technology for large-scale ML systems, computer vision, natural language processing, and multi-modal understanding. The Data and Machine Learning Innovation (DMLI) team is looking for a passionate Machine Learning Engineer to explore new methods, challenge existing metrics or protocols, and develop new insightful practices that will change how we understand data and overcome real-world ML challenges. As a team member, you will work on some of the most ambitious technical challenges in the field. Your role will involve collaborating closely with our team of machine learning researchers, engineers, and data scientists. Together, you will spearhead groundbreaking research initiatives and develop transformative products designed to create a significant impact for billions of users worldwide. As a Machine Learning (ML) Engineer, you will be entrusted with the critical role of innovating and applying state-of-the-art research in ML to tackle complex data problems. The solutions you develop will significantly impact future Apple products and the broader ML development ecosystem. You will work with a multidisciplinary team to actively participate in the data-model co-design and co-development practice. Your responsibilities will extend to the design and development of a comprehensive data curation framework. You will also create robust model evaluation pipelines, integral to the continuous improvement and assessment of ML models. Additionally, your role will entail an in-depth analysis of collected data to underscore its influence on model performance. Furthermore, you will have the opportunity to showcase your groundbreaking research work by publishing and presenting at premier academic venues. Your work may span a variety of topics, including but not limited to: • Designing and implementing semi-supervised, self-supervised representation learning techniques for maximizing the power of both limited labeled data and large-scale unlabeled data. • Developing evaluation protocols centered on the end-to-end user experience, with a focus on anticipating potential failure modes, edge cases, and anomalies. • Employing data selection techniques such as novelty detection, active learning, and core-set selection for diverse data types like images, 3D models, natural language, and audio. • Uncovering patterns in data, setting performance targets, and leveraging modern statistical and ML-based methods to model data distributions. This will aid in reducing redundancy and addressing out-of-distribution samples.

Locations

  • Beijing, Beijing, China 100045

Salary

Estimated Salary Rangemedium confidence

600,000 - 1,200,000 INR / yearly

Source: ai estimated

* This is an estimated range based on market data and may vary based on experience and qualifications.

Skills Required

  • Machine Learning Engineeringintermediate
  • Computer Visionintermediate
  • Natural Language Processingintermediate
  • Multi-modal Understandingintermediate
  • Semi-supervised Learningintermediate
  • Self-supervised Learningintermediate
  • Representation Learningintermediate
  • Evaluation Protocol Designintermediate
  • Novelty Detectionintermediate
  • Active Learningintermediate
  • Core-set Selectionintermediate
  • Data Analysisintermediate
  • Statistical Methodsintermediate
  • ML-based Methodsintermediate
  • Data Distribution Modelingintermediate
  • Data Curationintermediate
  • Model Evaluationintermediate
  • Data-model Co-designintermediate
  • Research Publicationintermediate
  • Academic Presentationintermediate
  • Collaboration with Multidisciplinary Teamsintermediate

Required Qualifications

  • Currently pursuing a PhD degree or equivalent experience in Machine Learning, Computer Vision, Natural Language Processing, Data Science, Statistics or related areas. (experience)
  • Proven expertise in machine learning with a passion for data-centric machine learning. (experience)
  • Experience with natural language processing (NLP), and large language models, such as BERT, GPT, or Transformers. (experience)
  • Strong programming skills and hands-on experience using the following languages or deep learning frameworks: Python, PyTorch, or Jax. (experience)

Preferred Qualifications

  • Staying on top of emerging trends in LLMs (experience)
  • Strong problem-solving and communication skills (experience)
  • Demonstrated publication record in relevant conferences (e.g. NeurIPS, ICML, ICLR, CVPR, etc) is a plus (experience)
  • Available for 9+ months for internship (experience)

Responsibilities

  • As a Machine Learning (ML) Engineer, you will be entrusted with the critical role of innovating and applying state-of-the-art research in ML to tackle complex data problems. The solutions you develop will significantly impact future Apple products and the broader ML development ecosystem.
  • You will work with a multidisciplinary team to actively participate in the data-model co-design and co-development practice. Your responsibilities will extend to the design and development of a comprehensive data curation framework. You will also create robust model evaluation pipelines, integral to the continuous improvement and assessment of ML models. Additionally, your role will entail an in-depth analysis of collected data to underscore its influence on model performance.
  • Furthermore, you will have the opportunity to showcase your groundbreaking research work by publishing and presenting at premier academic venues.
  • Your work may span a variety of topics, including but not limited to:
  • * Designing and implementing semi-supervised, self-supervised representation learning techniques for maximizing the power of both limited labeled data and large-scale unlabeled data.
  • * Developing evaluation protocols centered on the end-to-end user experience, with a focus on anticipating potential failure modes, edge cases, and anomalies.
  • * Employing data selection techniques such as novelty detection, active learning, and core-set selection for diverse data types like images, 3D models, natural language, and audio.
  • * Uncovering patterns in data, setting performance targets, and leveraging modern statistical and ML-based methods to model data distributions. This will aid in reducing redundancy and addressing out-of-distribution samples.

Target Your Resume for "Machine Learning Engineer - Intern" , Apple

Get personalized recommendations to optimize your resume specifically for Machine Learning Engineer - Intern. Takes only 15 seconds!

AI-powered keyword optimization
Skills matching & gap analysis
Experience alignment suggestions

Check Your ATS Score for "Machine Learning Engineer - Intern" , Apple

Find out how well your resume matches this job's requirements. Get comprehensive analysis including ATS compatibility, keyword matching, skill gaps, and personalized recommendations.

ATS compatibility check
Keyword optimization analysis
Skill matching & gap identification
Format & readability score

Tags & Categories

Hardware

Answer 10 quick questions to check your fit for Machine Learning Engineer - Intern @ Apple.

Quiz Challenge
10 Questions
~2 Minutes
Instant Score

Related Books and Jobs

No related jobs found at the moment.