Develop, train, evaluate, and prototype machine learning and deep learning algorithms for audio applications. Research audio ML and digital signal processing methods, create datasets and evaluation tools, integrate models into software or hardware platforms, and collaborate with interdisciplinary researchers and engineers. The intern will present technical findings and may contribute to future Bose products, patents, and publications.
At Bose Corporation, we believe sound is the most powerful force on earth - and for over 60 years, we have been a company built on innovation, excellence, and independence. Privately owned, fiercely customer-focused, and driven by our values, we continue to lead industries and transform lives through sound.
Today, Bose Corporation is entering an exciting new era. Across multiple global Business Units and Global Functions, we are shaping the future of audio technology, automotive, luxury, and premium experiences. We invite you to join us in this transformation.
Job Description
The Role
At Bose, we have a passion for creating extraordinary audio experiences by combining innovative research with cutting-edge technology. We're looking for an Audio Machine Learning Intern to help develop the next generation of AI-powered audio technologies.
In this role you'll work alongside experts in machine learning, digital signal processing, software engineering, and psychoacoustics to research, prototype, and evaluate novel audio algorithms. Your work may span areas such as speech enhancement, voice pickup, hearing augmentation, spatial audio, and new applications enabled by real-time machine learning.
You'll have the opportunity to take ideas from research through proof of concept, with the potential to contribute to future Bose products, patents, and research publications.
Responsibilities
Minimum Qualifications
Preferred Qualifications
TIMEFRAME
January 11-June 25, 2027
June 7- August 20, 2027
July 12- December 17, 2027
At Bose, you're inspired to be and do your best and are rewarded for your unique talents! Our compensation is thoughtfully tailored to your skills, experience, education, and location, and goes beyond base salary. The hiring range for this position in the primary work location of Framingham, Massachusetts is: $40.00-$51.25 per hour.The hiring range for other Bose work locations may vary. In addition to competitive base pay we offer rewards including bonus programs, comprehensive health and welfare benefits, a 401(k) plan, plus exclusive perks designed to support your wellbeing, and a generous employee discount where you can immerse yourself in our products and experiences. We are a proudly independent company-driven by purpose, guided by our values, and united by a belief in the power of sound. As the world leader in audio experiences, we're creating what's next-pushing boundaries and delivering transformative sound experiences for people everywhere. Join us and make your next career move a mic-drop. Let's Make Waves.
Today, Bose Corporation is entering an exciting new era. Across multiple global Business Units and Global Functions, we are shaping the future of audio technology, automotive, luxury, and premium experiences. We invite you to join us in this transformation.
Job Description
The Role
At Bose, we have a passion for creating extraordinary audio experiences by combining innovative research with cutting-edge technology. We're looking for an Audio Machine Learning Intern to help develop the next generation of AI-powered audio technologies.
In this role you'll work alongside experts in machine learning, digital signal processing, software engineering, and psychoacoustics to research, prototype, and evaluate novel audio algorithms. Your work may span areas such as speech enhancement, voice pickup, hearing augmentation, spatial audio, and new applications enabled by real-time machine learning.
You'll have the opportunity to take ideas from research through proof of concept, with the potential to contribute to future Bose products, patents, and research publications.
Responsibilities
- Develop, train, and evaluate machine learning and deep learning algorithms for audio applications.
- Research and implement state-of-the-art approaches in audio ML and digital signal processing.
- Prototype and integrate ML algorithms into software or hardware platforms to demonstrate new audio experiences.
- Develop and curate datasets, tools, and resources to support ML research and evaluation.
- Collaborate with researchers and engineers across disciplines to solve challenging audio problems.
- Present research findings and technical recommendations to Bose's interdisciplinary community.
Minimum Qualifications
- Currently pursuing or recently completed an M.S. or Ph.D. in Computer Science, Electrical Engineering, Machine Learning, Music Technology, or a related field.
- Experience developing machine learning or deep learning models using PyTorch, TensorFlow, Keras, or similar frameworks.
- Programming experience with Python and familiarity with C/C++, MATLAB, or similar languages.
- Understanding of audio signal processing and/or digital signal processing fundamentals.
- Experience with at least one audio ML area, such as speech enhancement, source separation, microphone array processing, TinyML, generative audio, spatial audio, or audio perception.
- Strong problem-solving, collaboration, and communication skills.
Preferred Qualifications
- Experience deploying ML models for real-time or resource-constrained applications, including TFLite, ONNX, or similar technologies.
- Experience with spatial audio, room acoustics, or acoustic simulation and analysis.
- Software engineering experience demonstrated through internships, research, coursework, or personal projects.
- Research publications or demonstrated research experience in machine learning, audio, or signal processing.
- Passion for audio, music, machine learning, and creating exceptional sound experiences.
TIMEFRAME
January 11-June 25, 2027
June 7- August 20, 2027
July 12- December 17, 2027
At Bose, you're inspired to be and do your best and are rewarded for your unique talents! Our compensation is thoughtfully tailored to your skills, experience, education, and location, and goes beyond base salary. The hiring range for this position in the primary work location of Framingham, Massachusetts is: $40.00-$51.25 per hour.The hiring range for other Bose work locations may vary. In addition to competitive base pay we offer rewards including bonus programs, comprehensive health and welfare benefits, a 401(k) plan, plus exclusive perks designed to support your wellbeing, and a generous employee discount where you can immerse yourself in our products and experiences. We are a proudly independent company-driven by purpose, guided by our values, and united by a belief in the power of sound. As the world leader in audio experiences, we're creating what's next-pushing boundaries and delivering transformative sound experiences for people everywhere. Join us and make your next career move a mic-drop. Let's Make Waves.
Bose Framingham, Massachusetts, USA Office
Bose Framingham, MA HQ Office



The Bose Corporation was founded in 1964 by Dr. Amar Bose, right here in Massachusetts - a legacy that continues to shape our culture of innovation and excellence. Our HQ campus comprises of three buildings and more than 1,500 team members, supporting collaboration and driving our shared mission.
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What you need to know about the Boston Tech Scene
Boston is a powerhouse for technology innovation thanks to world-class research universities like MIT and Harvard and a robust pipeline of venture capital investment. Host to the first telephone call and one of the first general-purpose computers ever put into use, Boston is now a hub for biotechnology, robotics and artificial intelligence — though it’s also home to several B2B software giants. So it’s no surprise that the city consistently ranks among the greatest startup ecosystems in the world.
Key Facts About Boston Tech
- Number of Tech Workers: 269,000; 9.4% of overall workforce (2024 CompTIA survey)
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- Research Centers and Universities: MIT, Harvard University, Boston College, Tufts University, Boston University, Northeastern University, Smithsonian Astrophysical Observatory, National Bureau of Economic Research, Broad Institute, Lowell Center for Space Science & Technology, National Emerging Infectious Diseases Laboratories



