Postdoctoral Fellow In Modular Deep Learning

Postdoctoral Fellow In Modular Deep Learning
Company:

Harvard University


Details of the offer

School: Harvard John A. Paulson School of Engineering and Applied Sciences
Department/Area: Computer Science
Position Description: The Data-Centric Machine Learning lab of Prof. David Alvarez-Melis at Harvard University, part of the ML Foundations group, has an opening for a postdoctoral position to work on novel methods for modular machine learning. The aim is to develop next-generation deep learning architectures that can be easily composed, adapted, and reused for various tasks. These architectures will be designed with principles of modularity, interpretability, and flexibility in mind, providing the foundation for scalable, robust, and efficient machine learning systems. Responsibilities: Conduct innovative research on modular deep learning methods and architectures. Design, implement, and evaluate novel machine learning models, frameworks, and algorithms. Collaborate with a cross-university multidisciplinary team to integrate and apply research findings in practical scenarios, particularly in the natural sciences. Publish research findings in top-tier machine learning and AI conferences. Mentor graduate and undergraduate students in related research projects. Contribute to the lab's collaborative and inclusive research culture. Basic Qualifications: Ph.D. in Computer Science, Electrical Engineering, or a related field with a strong publication record in machine learning, artificial intelligence, or related areas. Expertise in deep learning architectures and frameworks such as TensorFlow, PyTorch and/or JAX Strong programming skills in Python and familiarity with scientific computing libraries. Demonstrated experience in one or more of the following areas: modular machine learning, transfer learning, or composable models. Proven ability to conduct high-quality independent research and collaborate effectively in a team environment. Excellent communication skills for disseminating research to both technical and non-technical audiences. Additional Qualifications: Familiarity with generative modeling, Optimal Transport theory, differentiable optimization, and/or implicit deep learning Demonstrated interest in interdisciplinary research and applications of machine learning in fields such as physics, chemistry, biology, or healthcare. Prior experience mentoring students and contributing to open-source projects. Contact Information: Melissa Mendez
Contact Email: Special Instructions: Equal Opportunity Employer: Harvard is an equal opportunity employer and all qualified applicants will receive consideration for employment without regard to race, color, sex, gender identity, sexual orientation, religion, creed, national origin, ancestry, age, protected veteran status, disability, genetic information, military service, pregnancy and pregnancy-related conditions, or other protected status.
About Harvard University
Harvard University is devoted to excellence in teaching, learning, and research, and to developing leaders in many disciplines who make a difference globally. The University, which is based in Cambridge and Boston, Massachusetts, has an enrollment of over 20,000 degree candidates, including undergraduate, graduate, and professional students. Harvard has more than 360,000 alumni around the world. The University has twelve degree-granting Schools in addition to the Radcliffe Institute for Advanced Study, offering a truly global education. Established in 1636, Harvard is the oldest institution of higher education in the United States.
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Postdoctoral Fellow In Modular Deep Learning
Company:

Harvard University


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