Job Information
Harvard University Postdoctoral research fellows in generative, multimodal AI, and seismic foundational models in Cambridge, Massachusetts
Details
Title Postdoctoral research fellows in generative, multimodal AI, and seismic foundational models
School Faculty of Arts and Sciences
Department/Area Earth and Planetary Sciences
Position Description
Join our dynamic research team at Harvard University and spearhead groundbreaking research at the intersection of generative AI, multimodal learning, and Earth sciences. We are seeking a highly motivated Postdoctoral Research Fellow to develop and apply innovative, data-driven models for seismology, with a focus on developing cutting-edge foundation models. This is an exceptional opportunity to contribute to significant scientific discoveries and push the boundaries of AI in Earth science applications.
We are looking for passionate and driven individuals with expertise in one or more of the following areas:
Generative AI
Agentic AI
Graph Representation Learning and Modeling
Foundation Models
Large Language Models
Multimodal Learning
Basic Qualifications
A Ph.D. or equivalent degree in Machine Learning, Computer Science, Electrical Engineering, Geophysics, Applied Mathematics, or a closely related field.
Demonstrated strong research skills, evidenced by high-quality publications in top-tier machine learning/AI conferences and/or leading scientific journals.
Excellent programming skills and hands-on experience with leading machine learning frameworks (e.g., TensorFlow, PyTorch).
Practical experience with cloud computing platforms (e.g., AWS , GCP , Azure).
Additional Qualifications
Experience with multi- GPU model training and large-scale inference.
Familiarity with modern AI environments and tools.
Prior experience applying AI to seismology or related Earth science domains.
Special Instructions
Contact Information
Corinne Engber
20 Oxford St.
Cambridge, MA 02138
Contact Email cengber@fas.harvard.edu
Equal Opportunity Employer
We are an equal opportunity employer and all qualified applicants will receive consideration for employment without regard to race, color, religion, sex, national origin, disability status, protected veteran status, gender identity, sexual orientation, pregnancy and pregnancy-related conditions or any other characteristic protected by law.
Minimum Number of References Required 3
Maximum Number of References Allowed 3
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