SkillSKL-848BAD60
pymc-modeling
Bayesian statistical modeling with PyMC v5+. Use when building probabilistic models, specifying priors, running MCMC inference, diagnosing convergence, or comparing models. Covers PyMC, ArviZ, pymc-bart, pymc-extras, nutpie, and JAX/NumPyro backends. Triggers on tasks involving: Bayesian inference, posterior sampling, hierarchical/multilevel models, GLMs, time series, Gaussian processes, BART, mixture models, prior/posterior predictive checks, MCMC diagnostics, LOO-CV, WAIC, model comparison, or causal inference with do/observe.
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80Community popularityContributors
~2Approx. contributorsLast Push
2mo agoActive maintenanceForks
10Community reuseRepository Age
6mSince 2026Issue Health
2Actively managedPROTOCOL WARRANT
This score reflects origin + ecosystem signals. It is not a code audit.
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