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anchapin
GitHub creator profile

anchapin

Repository-level view of 45 collected skills across 6 GitHub repositories.

skills collected
45
repositories
6
updated
2026-06-12
repository explorer

Repositories and representative skills

bem-engineer
software-developers

Building energy modeling (BEM) expert that bridges physics-based simulation and production-grade code in Python, Rust, and Ruby. Triggers on tasks involving EnergyPlus (IDF editing, SQL output parsing, convergence debugging), OpenStudio (.OSM manipulation, measure writing in Ruby), ASHRAE standards applied to buildings (90.1 envelope and equipment, 62.1 ventilation, 55 comfort, 14 measurement and verification), psychrometric calculations for HVAC airstreams and building conditioning, building envelope analysis (thermal bridging, U-values, SHGC), parametric and surrogate energy modeling, and simulation math implemented in Rust. Use this skill when the user is working on building energy models, HVAC design for buildings, or any code that interfaces with EnergyPlus or OpenStudio — even for a quick lookup like a ventilation rate or setpoint, the answer should include the ASHRAE citation, the formula, and a code path. Do NOT trigger for general thermodynamics (power cycles, flat-plate convection, Rankine cycle), a

2026-06-12
analyst
software-developers

Evaluate proposals — feasibility, ROI, risk.

2026-04-27
architect
software-developers

System design — module boundaries, API contracts, ADRs.

2026-04-27
backend
software-developers

Python server code, APIs, async, strict typing.

2026-04-27
ci-fixer
software-quality-assurance-analysts-and-testers

CI failures — read error, minimal fix, verify.

2026-04-27
devops
network-and-computer-systems-administrators

DevOps — Docker, CI/CD, cloud infra, monitoring.

2026-04-27
frontend
web-developers

React / Next.js UI, state, accessibility.

2026-04-27
manager
computer-occupations-all-other

Planning — decompose goals, create tasks via task server.

2026-04-27
Showing top 8 of 17 collected skills in this repository.
brainstorm
data-scientists-152051

Run interactive brainstorming across verifiers environments, evaluations, GEPA, and RL training. Use when the user wants ideation, literature scanning, concept teaching, roadmap planning, or research program design grounded in local CLI sources, verifiers, and RL trainer code.

2026-05-08
browse-environments
network-and-computer-systems-administrators

Discover and inspect verifiers environments through the Prime ecosystem. Use when asked to find environments on the Hub, compare options, inspect metadata, check action status, pull local copies for inspection, or choose environment starting points before evaluation, training, or migration work.

2026-05-08
create-environments
software-developers

Create or migrate verifiers environments for the Prime Lab ecosystem. Use when asked to build a new environment from scratch, port an eval or benchmark from papers or other libraries, start from an environment on the Hub, or convert existing tasks into a package that exposes load_environment and installs cleanly with prime env install.

2026-05-08
evaluate-environments
software-quality-assurance-analysts-and-testers

Run and analyze evaluations for verifiers environments using prime eval. Use when asked to smoke-test environments, run benchmark sweeps, resume interrupted evaluations, compare models, inspect sample-level outputs, or produce evaluation summaries suitable for deciding next steps.

2026-05-08
optimize-environments
network-and-computer-systems-administrators

Audit and optimize verifiers environments for async performance. Use when asked to profile, speed up, or review an environment for concurrency bottlenecks, event loop blocking, or scaling issues under high rollout counts.

2026-05-08
optimize-with-environments
data-scientists-152051

Optimize environment system prompts with GEPA through prime gepa run. Use when asked to improve prompt performance without gradient training, compare baseline versus optimized prompts, run GEPA from CLI or TOML configs, or interpret GEPA outputs before deployment.

2026-05-08
review-environments
network-and-computer-systems-administrators

Review verifiers environments for correctness, robustness, and ecosystem compatibility. Use when asked for environment code review, quality audit, migration validation, or release readiness checks for local environments or environments pulled from the Hub.

2026-05-08
train-with-environments
data-scientists-152051

Train models with verifiers environments using hosted RL or prime-rl. Use when asked to configure RL runs, tune key hyperparameters, diagnose instability, set up difficulty filtering and oversampling, or create practical train and eval loops for new environments.

2026-05-08
Showing top 8 of 11 collected skills in this repository.
Showing top 8 of 9 collected skills in this repository.
Showing 6 of 6 repositories
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