Mehreen Fatima

Dr. Mehreen Fatima is an Assistant Professor of psychology at Azim Premji University, Bhopal, Madhya Pradesh. She was awarded a PhD in psychology in 2025 from the University of Delhi, under the supervision of Prof. Nandita Babu, with her doctoral work focusing on the development of empathy in children with autism spectrum disorder. She has also qualified for NTA NET-JRF in Psychology at the 99.82 percentile (June 2019).

Dr Mehreen’s research interests lie at the intersection of developmental and cognitive psychology, with a particular focus on socio-cognitive abilities across neurotypical and neurodivergent populations. She has published in major international journals and has a forthcoming book, Empathy Spectrum: Understanding Connections in a Diverse World, under contract with John Wiley & Sons, Inc. She has presented her research at major international conferences, including the 33rd International Congress of Psychology in Prague, Czech Republic, where she was selected as one of forty Emerging Psychologists by the International Union of Psychological Sciences. She was also selected for the inaugural Emerging Psychologist Programme (2025) by the National Academy of Psychology, India.

As a Fulbright-Nehru Postdoctoral Research Fellow at the Jaswal Lab at the University of Virginia, Dr. Mehreen is investigating communication support practices for non-speaking autistic individuals, with a focus on neurodiversity-affirming approaches. Her research seeks to develop evidence-based frameworks that honor the communicative strengths and preferences of such individuals. She also aims to contribute to the growing body of research that centers autistic perspectives in the design and evaluation of communication interventions.

Ajit Singh

Dr. Ajit Singh is Research Associate at the Department of Mathematics, Indian Institute of Technology Guwahati, Assam. He obtained his B.Sc. in 2015 from Ewing Christian College, an autonomous constituent college of Allahabad University, Prayagraj and his M.Sc. in 2017 from the Indian Institute of Technology Guwahati. He then earned his Ph.D. in June 2022 from the Indian Institute of Technology Guwahati, Assam under the supervision of Prof. Rupam Barman. Dr. Singh is primarily interested in number theory: in particular, partition theory, mock theta functions, modular forms, and harmonic maass forms. His research is deeply influenced by the work of Ramanujan. Dr. Singh has published several research articles in reputable international journals. He has also qualified IIT-JAM, CSIR-UGC NET, and GATE examinations.

As a Fulbright-Nehru Postdoctoral Research fellow, Dr. Singh has joined the Department of Mathematics, University of Virginia, Charlottesville, VA. He is working on arithmetic properties of certain partition and mock theta functions using the q-series manipulations, modular forms, and harmonic maass forms theory. He is primarily focusing on Wang’s and Mahlburg’s conjectures on the mock theta functions and overpartitions, respectively.

Indranil Chakraborty

Dr. Indranil Chakraborty is currently an institute postdoctoral fellow at the Department of Physics, Indian Institute of Technology Bombay, where he has been working since May 2023. He earned his bachelor’s degree in physics from St. Xavier’s College (Autonomous), Kolkata, affiliated with University of Calcutta, in 2015. He then completed both his master’s degree in physics (2017) and PhD (2023) at the Indian Institute of Technology Kharagpur, West Bengal.

Dr. Chakraborty’s research interests lie in gravitational physics, particularly in the study of gravitational wave memory effects — a subtle and yet-to-be-detected phenomenon predicted by general relativity. Over the years, he has authored several research articles, including a single-author publication in reputed international journals.

As a Fulbright-Nehru Postdoctoral Research Fellow at the University of Virginia, Charlottesville, VA, Dr. Chakraborty is investigating how gravitational wave memory effects manifest in cosmological settings. His project also aims to develop a formalism for calculating memory effects in modified theories of gravity. This research is crucial for next-generation gravitational wave detectors, as they are expected to probe potential deviations from general relativity — currently the best-verified theory of gravity.