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As a member of both Stefano Profumo’s SCIPP Theory group at UC Santa Cruz and Joseph Hennawi’s ENIGMA group at UC Santa Barbara and Leiden Observatory, I work at the intersection of (high energy/astro)physics, deep learning, and statistics.

In my time as a graduate student, I’ve been lucky enough to work on projects with the world’s leading experts on applied deep learning. I have worked on deepening (pun intended) the understanding of current theories for a variety of topics: From beyond standard model particle physics, to the structure of the Milky Way, and the cosmological history of the universe.

You might know me from my work on:

  1. Simulation-Based Inference: Approximate Sequential Bayesian algorithms written in JAX. Used with applications to high energy physics phenomenology and future quasar inference work.
  2. Via Machinae: Unsupervised anomaly detection to discover stellar streams in the Milky Way.
  3. Spectre: Approximate Bayesian algorithm for SOTA quasar continuum inference.

John Tamanas's Projects

beta-vae icon beta-vae

A Pytorch Implementation of the Beta-VAE

lbi icon lbi

Personal implementation of Sequential Neural Likelihood/Likelihood-Ratios

optax icon optax

Optax is a gradient processing and optimization library for JAX.

pydelfi icon pydelfi

Density Estimation Likelihood-Free Inference with neural density estimators and adaptive acquisition of simulations

pytorch-flows icon pytorch-flows

PyTorch implementations of algorithms for density estimation

pzflow icon pzflow

Probabilistic modeling of tabular data with normalizing flows.

saxbi icon saxbi

JAX implementation of Sequential Neural Likelihood Estimation (SNLE) and Sequential Neural Ratio Estimation (SNRE) simulation-based inference algorithms

waterfall icon waterfall

A mac+mouse-friendly clone of the Cascade custom CSS theme for Firefox.

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