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lebsral/DSPy-Programming-not-prompting-LMs-skills - Página 3

O SkillsMP coletou 95 skills de lebsral/DSPy-Programming-not-prompting-LMs-skills. Abra uma skill para revisar a origem e os detalhes.

lebsral/DSPy-Programming-not-prompting-LMs-skills

Mostrando 15 de 95 skills coletadas.

ocupação
Analistas de garantia de qualidade de software e testadores
descrição

Review DSPy code for correctness and best practices. Use when you want a code review of your DSPy program, need to check if your AI code follows best practices, want to find anti-patterns in your DSPy usage, or need a quality audit of your AI implementation.…

Idioma do texto original: inglês

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ocupação
Desenvolvedores de software
descrição

Pick the right DSPy module and architecture for your AI feature. Use when you are not sure whether to use Predict, ChainOfThought, ReAct, or a pipeline, need to choose between DSPy patterns, want architecture advice for your AI feature, or are deciding…

Idioma do texto original: inglês

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ocupação
Cientistas de dados
descrição

Fine-tune models on your data to maximize quality and cut costs. Use when prompt optimization hit a ceiling, you need domain specialization, you want cheaper models to match expensive ones, you heard fine-tuning will make us AI-native, you have 500+ training…

Idioma do texto original: inglês

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ocupação
Cientistas de dados
descrição

Make AI solve hard problems that need planning and multi-step thinking. Use when your AI fails on complex questions, needs to break down problems, requires multi-step logic, needs to plan before acting, gives wrong answers on math or analysis tasks, or when a…

Idioma do texto original: inglês

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ocupação
Desenvolvedores de software
descrição

Request or contribute a new AI skill that does not exist yet. Use when DSPy supports something but there is no skill for it — helps you build the skill and submit a PR, or file an issue requesting it. Also use when the user says there should be a skill for…

Idioma do texto original: inglês

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ocupação
Desenvolvedores de software
descrição

Build AI that searches your documents and answers questions. Use when building a knowledge base, help center Q&A, chatting with documents, answering questions from a database, search-and-answer over internal docs, customer support bot, or FAQ system. Also use…

Idioma do texto original: inglês

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ocupação
Desenvolvedores de software
descrição

Put your AI behind an API. Use when you need to serve AI features as web endpoints, add AI to an existing backend, deploy AI for other services to call, wrap a DSPy program in REST or HTTP, build an AI microservice, or put a language model behind FastAPI or…

Idioma do texto original: inglês

atualizado
ocupação
Cientistas de dados
descrição

Auto-sort, categorize, or label content using AI. Use when sorting tickets into categories, auto-tagging content, labeling emails, detecting sentiment, routing messages to the right team, triaging support requests, building a spam filter, intent detection,…

Idioma do texto original: inglês

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ocupação
Desenvolvedores de software
descrição

See exactly what your AI did on a specific request. Use when you need to debug a wrong answer, trace a specific AI request, profile slow AI pipelines, find which step failed, inspect LM calls, view token usage per request, build audit trails, or understand…

Idioma do texto original: inglês

atualizado
ocupação
Desenvolvedores de software
descrição

Use when you need to customize how DSPy formats prompts for a specific provider — switching from chat to completion format, forcing JSON output, or debugging prompt rendering issues. Common scenarios - debugging why your prompt looks wrong when sent to the…

Idioma do texto original: inglês

atualizado
ocupação
Desenvolvedores de software
descrição

Use when you need to run DSPy modules asynchronously — FastAPI endpoints, concurrent LM calls, non-blocking execution, or integrating DSPy into async web frameworks. Common scenarios - serving DSPy behind FastAPI or Starlette, running multiple LM calls…

Idioma do texto original: inglês

atualizado
ocupação
Desenvolvedores de software
descrição

Use when you need structured source attribution in AI responses — verifiable citations that link claims to specific passages in source documents. Common scenarios - RAG with citation extraction, grounded answers with document references, legal or compliance…

Idioma do texto original: inglês

atualizado
ocupação
Desenvolvedores de software
descrição

Use when you need to connect DSPy agents to external MCP tool servers — databases, file systems, APIs, or any MCP-compatible service. Common scenarios - wiring MCP tools into a ReAct or CodeAct agent, discovering tools from an MCP server at runtime,…

Idioma do texto original: inglês

atualizado
ocupação
Desenvolvedores de software
descrição

Use when you need to stream LM output tokens to a frontend in real time — progressive responses, typing indicators, server-sent events, or WebSocket feeds. Common scenarios - streaming DSPy responses to a React UI, FastAPI SSE endpoint with DSPy, showing AI…

Idioma do texto original: inglês

atualizado
ocupação
Desenvolvedores de software
descrição

Use when working with reasoning models (o1, o3, o3-mini, DeepSeek-R1, Claude extended thinking) that reject system prompts or ignore formatting instructions. Common scenarios - using o1 or o3 with DSPy, getting structured output from reasoning models,…

Idioma do texto original: inglês

atualizado
Mostrando 15 de 95 skills coletadas.