Adjunct Associate Faculty, Applied Generative AI (On-Campus, Fall '25)

New York, NY, United States

Columbia University

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Company Description

Columbia University has been a leader in higher education in the nation and around the world for more than 250 years. At the core of our wide range of academic inquiry is the commitment to attract and engage the best minds to pursue greater human understanding, pioneering discoveries, and service to society.

The School of Professional Studies at Columbia University offers innovative and rigorous programs that integrate knowledge across disciplinary boundaries, combine theory with practice, leverage the expertise of our students and faculty, and connect global constituencies. Through seventeen professional master's degrees, courses for advancement and graduate school preparation, certificate programs, summer courses, high school programs, and a program for learning English as a second language, the School of Professional Studies transforms knowledge and understanding in service of the greater good.

Job Description

Seeking analytics professionals to serve as a part-time Associate for a graduate-level course on Applied Generative AI. An Associate is a faculty line junior to a Lecturer, that provides subject matter expertise and supports the instructional process for a course section. Serving as an Associate is an outstanding way to gain exposure to graduate-level teaching at Columbia University.

The Applied Generative AI course provides students with a comprehensive introduction to a branch of machine learning called generative modeling, focusing on the underlying concepts, theoretical techniques, and practical applications. Students will learn to use, fine-tune, and programmatically interface with high-level APIs and open-source foundational models, allowing them to leverage state-of-the-art tools in Generative AI. Additionally, the course delves into the theory and practice of low-level implementations, empowering students to train their own models on their own data and understand these models from first principles. The course covers various types of generative models, including Variational Autoencoders (VAEs), Generative Adversarial Networks (GANs), and Transformers with their applications to text, image, audio, and video generation.

Responsibilities

  • Attend all class sessions, assist with instruction, lead breakout sessions, facilitate discussions.

  • Evaluate, grade student work and assessments as requested by the course Lecturer.

  • Monitor and address student concerns and inquiries.

Qualifications

Columbia University SPS operates under a scholar-practitioner faculty model, which enables students to learn from faculty possessing outstanding academic training as well as a record of accomplishment as practitioners in an applied industry setting. 

Requirements

  • Graduate degree in an area related to Machine Learning, Computer Science, Applied Mathematics, or related field.

  • 3+ years of related applied professional experience.

Preferred Skills & Experience

  • Programming experience in Python and experience with major deep learning frameworks such as PyTorch or TensorFlow.

  • Knowledge of deep learning architectures, such as CNNs, VAEs, GANs, and RNNs. 

  • Experience with deploying code on cloud platforms such as AWS, GCP, or Azure. 

  • Knowledge of Mathematics and Probability concepts used in machine learning, including

  • Optimization, Gradient Descent, Conditional Probability, Bayes Theorem, and Normal Distribution. 

Additional Information

Salary: $3,343.74 per semester-length course

  • Please submit a resume inclusive of university teaching experience.

All your information will be kept confidential according to EEO guidelines.

Columbia University is an Equal Opportunity/Affirmative Action employer.

 

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Tags: APIs Architecture AWS Azure Computer Science Deep Learning GANs GCP Generative AI Generative modeling Machine Learning Mathematics Open Source Python PyTorch Teaching TensorFlow Transformers

Region: North America
Country: United States

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