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Tyler-R-Kendrick/slm-training

SkillsMP 已收集 Tyler-R-Kendrick/slm-training 中的 30 个 Skill。打开任一 Skill 可查看来源和详情。

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已展示 30 / 30 个已收集 Skill。

职业分类
未分类
描述

Discover and run the reasoning/revmath profile — reverse-mathematics / computability analysis over existing campaign, formal-preflight, evidence, and repair owners. Use when editing revmath schemas, fixtures, labeling, self-healing, four-axis ledgers, or…

原文语言:英语

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职业分类
未分类
描述

Use when the Linear In Review queue for team SLM is backed up and an agent session should claim the oldest issues, finish each in an isolated git worktree (reusing open PRs), fix CI in bounded rounds, and squash-merge once merge preflight passes

原文语言:英语

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职业分类
未分类
描述

Use when a scheduled or interactive session should report the current autotrain evidence state — open hypothesis families, closed approaches, preflight blocks, pending confirmations, promoted-model status — as a short read-only markdown brief in chat

原文语言:英语

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职业分类
未分类
描述

Use when refreshing the generated OpenWiki pages under docs/openwiki — a scheduled or manual session installs the pinned OpenWiki CLI, selects a provider key, runs scripts.update_openwiki, and opens a PR on branch openwiki/update (skips cleanly when no…

原文语言:英语

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职业分类
未分类
描述

Use when a screening positive appears in the continuous autotrain loop and before any confirmation spend — convene three independent skeptic lenses (statistical power, prior evidence, mechanism plausibility) to attempt refutation; majority-refute files the…

原文语言:英语

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职业分类
软件开发工程师
描述

Operate the OpenUI SLM training pipeline end to end, including a continuous hands-off model and harness improvement loop. Bare /autotrain is non-terminating and must not stop for user confirmation; an explicit phase or --once is finite. Code fixes during…

原文语言:英语

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职业分类
软件质量保证分析师与测试员
描述

Use when evaluating models, writing or interpreting ship gates, claiming readiness, changing parse/fidelity/reward metrics, or deciding fixture-demo vs production ship

原文语言:英语

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职业分类
软件开发工程师
描述

How to do multi-step engineering work in this repo: parent agents plan and stack PRs with official GitHub Stacked PRs (`gh stack` / `gs`); subagents implement layers with incremental check-ins; parent closes every PR bottom-up with rubber-duck adversarial…

原文语言:英语

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职业分类
软件开发工程师
描述

Improve, extend, debug, or review any canonical OpenUI training harness, including autoresearch/hypothesizer, annotations, distillation, experiment selection/promotion, model build/evaluation, preference learning, quality/retrieval, RL, held-out test data, or…

原文语言:英语

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职业分类
数据科学家
描述

Run or extend evidence-grounded OpenUI autoresearch and autotraining campaigns, including literature discovery, typed experiments, data repair, telemetry, researcher evaluation, persistence, and RL readiness.

原文语言:英语

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职业分类
数据科学家
描述

Diagnose and improve Lean4-calculated metric ranges when an autotraining, evaluation, benchmark, or promotion observation is outside its preregistered band. Use for metric_evidence/v2 and metric_certificate/v2 work, LeverProof theorem or assumption changes,…

原文语言:英语

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职业分类
软件开发工程师
描述

Use when running, extending, or interpreting quality (E*), grammar (X*), perf (P/Q/R), phase, scaling, or mixture experiment matrices

原文语言:英语

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职业分类
软件开发工程师
描述

Run the knowledge-driven OpenUI research loop that coordinates the training pipeline with curated knowledge. Read and update the repo + personal brains (OKF / Obsidian) and OpenWiki, run the prior-work discovery loop to find related research, drive the…

原文语言:英语

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职业分类
软件开发工程师
描述

Use when finishing any train, eval, benchmark, profile, telemetry, matrix, or reproduction run — or when a checkpoint was created/promoted without MODEL_CARD/README updates — or when results exist only under outputs/ or in chat without matching docs/design…

原文语言:英语

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职业分类
软件开发工程师
描述

Close the data-quality loop after any training-data synthesis or build. Use whenever build_train_data (or the build_train_data job) runs, when a quality_report.json shows warnings, when planning changes to producers/synthesizers, or when deciding what data…

原文语言:英语

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职业分类
软件开发工程师
描述

Use whenever a dashboard page changes — editing any src/apps/dashboard/src/pages/*.tsx or the shared components in src/apps/dashboard/src/components.tsx, or when adding/removing a route in main.tsx. The dashboard renders every page two ways (a…

原文语言:英语

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职业分类
软件开发工程师
描述

Create or refresh committed train-only frontier description bundles for OpenUI gold records. Use when filling src/slm_training/resources/frontier/worklist.jsonl with paraphrases, L1-L5 abstraction prompts, minimal edit instructions, or optional external-page…

原文语言:英语

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职业分类
软件开发工程师
描述

Keep this repository's tracked files and directories canonical, navigable, and free of redundant copies. Use before creating, moving, renaming, deleting, or duplicating tracked files or folders; when adding modules, scripts, docs, fixtures, tools, skills,…

原文语言:英语

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职业分类
数据科学家
描述

Autonomous NeMo-RL research agent workflow for directed hypothesis testing and open-ended discovery. Guides agents through the full experiment lifecycle: understanding recipes and environments, wiring RL or NeMo-gym runs, launching reproducible baselines and…

原文语言:英语

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职业分类
软件开发工程师
描述

Safely plan, submit, and reconcile pinned NVIDIA NeMo RL training on Hugging Face Jobs with durable OpenUI artifacts. Use for NeMo RL Jobs commands, recipes, credentials, checkpoint handling, or hardware-smoke claims.

原文语言:英语

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职业分类
软件开发工程师
描述

Manage durable working-session memory for coding agents. Use when a user asks to preserve or recover agent context across disconnects, VS Code restarts, long-running work, handoffs, or any session where important state should be written periodically under the…

原文语言:英语

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职业分类
软件开发工程师
描述

Token-reduction skill for coding agents. Compresses JSON tool output, build logs, grep/ripgrep search results, source code, and conversation history the same way the Headroom proxy does — but in-context, with no binary install. Use this skill whenever an…

原文语言:英语

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职业分类
软件开发工程师
描述

Hugging Face Hub CLI (`hf`) for downloading, uploading, and managing models, datasets, spaces, buckets, repos, papers, jobs, and more on the Hugging Face Hub. Use when: handling authentication; managing local cache; managing Hugging Face Buckets; running or…

原文语言:英语

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职业分类
软件开发工程师
描述

Plan and coordinate the deployment of a model to Amazon SageMaker AI. Use this skill whenever the user wants to deploy, host, serve, or expose a model on SageMaker or AWS — including phrases like "deploy a model", "host this LLM on AWS", "serve this embedding…

原文语言:英语

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职业分类
软件开发工程师
描述

Create a SageMaker endpoint (real-time or async) with autoscaling, CloudWatch alarms, and tagging enabled by default. Use this skill whenever about to create a SageMaker endpoint, write deployment code that calls `create_endpoint`, or finalize a deployment…

原文语言:英语

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职业分类
数据科学家
描述

Use when the user asks about finding the best, top, or recommended model for a task, wants to know what AI model to use, or wants to compare models by benchmark scores. Triggers on: "best model for X", "what model should I use for", "top models for [task]",…

原文语言:英语

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职业分类
软件开发工程师
描述

Build and publish a Gradio demo on Hugging Face Spaces for a user-provided LoRA. Use when someone asks to create, generate, ship, or publish a Space, demo, Gradio app, or playground for a LoRA — including LoRAs for Qwen-Image, Qwen-Image-Edit, LTX-Video, Wan,…

原文语言:英语

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职业分类
软件开发工程师
描述

Build, deploy, and maintain applications on Hugging Face Spaces — Gradio / Docker / Static SDKs, ZeroGPU and dedicated hardware, model loading, debugging, buckets, inference providers, community grants. Use whenever the user asks to create or host an app on…

原文语言:英语

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职业分类
软件开发工程师
描述

Rust Token Killer (rtk-ai/rtk) — compress shell/tool command output by 60–90% before it enters the LLM context. Use for git status/diff/log, pytest, ruff, ls, docker, kubectl, and other verbose CLI output. Prefer `rtk <cmd>` over raw commands when rtk is…

原文语言:英语

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职业分类
数据科学家
描述

Train and fine-tune transformer language models using TRL (Transformers Reinforcement Learning). Supports SFT, DPO, GRPO, KTO, RLOO and Reward Model training via CLI commands.

原文语言:英语

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已展示 30 / 30 个已收集 Skill。