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Weizhena/Deep-Research-skills

向现有调研outline补充items(调研对象)。

Skills

Weizhena/Deep-Research-skills

向现有调研outline补充字段定义。

Skills

Weizhena/Deep-Research-skills

Conduct preliminary research on a topic and generate research outline. For academic research, benchmark research, technology selection, etc.

Skills

Weizhena/Deep-Research-skills

Summarize deep research results into markdown report, cover all fields, skip uncertain values.

Skills

Weizhena/Deep-Research-skills

Read research outline, launch independent agent for each item for deep research. Disable task output.

Skills

Weizhena/Deep-Research-skills

Add items (research objects) to existing research outline.

Skills

Weizhena/Deep-Research-skills

Add field definitions to existing research outline.

Skills

Weizhena/Deep-Research-skills

Conduct preliminary research on a topic and generate research outline. For academic research, benchmark research, technology selection, etc.

Skills

Weizhena/Deep-Research-skills

Summarize deep research results into markdown report, cover all fields, skip uncertain values.

Skills

Weizhena/Deep-Research-skills

Read research outline, launch independent agent for each item for deep research. Disable task output.

Skills

Weizhena/Deep-Research-skills

Add items (research objects) to existing research outline.

Skills

Weizhena/Deep-Research-skills

Add field definitions to existing research outline.

Skills

NVIDIA-NeMo/Nemotron

Run the Nemotron-3 Ultra Text2SQL LoRA fine-tuning tutorial (NeMo Megatron-Bridge) end-to-end for the user on their SLURM cluster: data prep, distributed checkpoint conversion, and packed LoRA fine-tuning of the 550B hybrid Mamba-Transformer MoE, ending at a saved adapter. Use when the user wants to run this cookbook, fine-tune Nemotron-3 Ultra with LoRA, or adapt the notebook to their own cluster.

Skills

NVIDIA-NeMo/Nemotron

Reference desk for NVIDIA Nemotron 3 Ultra (550B-A55B) — architecture, NVFP4 pretraining, SFT, MOPD (multi-teacher on-policy distillation), MTP boosting, quantization, inference. Use when the user asks facts about Ultra rather than building a pipeline.

Skills

NVIDIA-NeMo/Nemotron

Reference desk for NVIDIA Nemotron 3 Super — architecture, training data, recipes (pretrain/SFT/RL/eval/quantization), and deployment notes. Use when the user asks facts about Super3 rather than building a pipeline.

Skills

NVIDIA-NeMo/Nemotron

Reference desk for Nemotron 3 Nano / Llama-Nemotron Nano 3 — architecture, training data, recipes, evaluation, quantization, deployment. Use when the user asks facts about the model rather than building a pipeline.

Skills

NVIDIA-NeMo/Nemotron

Add a new step under src/nemotron/steps/<category>/<step_id>/ — manifest (step.toml), runner glue, configs, and per-step README.md. Use when extending the catalog so /nemotron-customize can route to it.

Skills

NVIDIA-NeMo/Nemotron

Add a cross-cutting decision pattern under src/nemotron/steps/patterns/. Use when a recurring ML decision (tokenizer lock, eval bookends, LoRA-on-small-data, etc.) must be encoded so other skills can fire it during planning.

Skills

NVIDIA-NeMo/Nemotron

Onboard a new model family (Nemotron or third-party) into skills/ — paper chunks, recipe summaries, context packs, and model card. Use when a contributor wants downstream skills like /nemotron-customize to be able to route to a new model.

Skills

NVIDIA-NeMo/Nemotron

Prepare, validate, build, and use Nemotron Customizer airgap image bundles for offline clusters. Use when planning airgapped deployments, editing deploy/nemotron-customizer/airgap/airgap.yaml, selecting workflow targets, grouping step execution images, baking repo overlays or wheel additions, resuming airgap runner builds, or submitting `nemotron steps run` jobs inside an airgapped environment.

Skills

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