Comparison
llm-app vs RasaGPT
Verdict
Pick llm-app when llm-app is primarily Jupyter Notebook; RasaGPT is Python; pick RasaGPT when rasaGPT is primarily Python; llm-app is Jupyter Notebook.
Markdown twin · llm-app alternatives · RasaGPT alternatives
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Trust & integrity
| Signal | llm-app | RasaGPT |
|---|---|---|
| Maintenance | Very active (5d since push) As of today · github_public_v1 | Slowing (240d since push) As of today · github_public_v1 |
| Provenance | Not a fork · Organization account As of today · github_public_v1 | Not a fork · Personal account As of today · github_public_v1 |
| Security (OSV) | No lockfile As of today · none | No lockfile As of today · none |
Tagline
- llm-app
- Ready-to-run cloud templates for RAG, AI pipelines, and enterprise search with live data.
- RasaGPT
- 💬 RasaGPT is the first headless LLM chatbot platform built on top of Rasa and Langchain. Built w/ Rasa, FastAPI, Langchain, LlamaIndex, SQLModel, pgvector, ngrok, telegram
Stars
- llm-app
- 59k
- RasaGPT
- 2.5k
Forks
- llm-app
- 1.4k
- RasaGPT
- 251
Open issues
- llm-app
- 10
- RasaGPT
- 57
Language
- llm-app
- Jupyter Notebook
- RasaGPT
- Python
Adopt for
- llm-app
- llm-app offers pre-configured cloud deployment templates designed specifically for creating AI-driven applications such as chatbots and machine learning projects leveraging Hugging Face models. It supports direct integrz
- RasaGPT
- -
Persona
- llm-app
- -
- RasaGPT
- -
Runtime
- llm-app
- -
- RasaGPT
- -
License
- llm-app
- MIT
- RasaGPT
- MIT
Last pushed
- llm-app
- Jul 5, 2026
- RasaGPT
- Nov 12, 2025
Categories
- llm-app
- LLM Frameworks, Data & Retrieval, Vector Databases
- RasaGPT
- LLM Frameworks, Model Training, Vector Databases
Trust and health
Maintenance
- llm-app
- Very active (96%)
- RasaGPT
- Slowing (36%)
Days since push
- llm-app
- 5d
- RasaGPT
- 240d
Open issues (now)
- llm-app
- 10
- RasaGPT
- 57
Owner type
- llm-app
- Organization
- RasaGPT
- User
Full report
- llm-app
- Trust report
- RasaGPT
- Trust report
Choose llm-app if…
- llm-app is primarily Jupyter Notebook; RasaGPT is Python.
- Requirements: Requires Docker; The tool is Docker-friendly and designed to ensure synchronization with cloud-based storage solutions among others..
- Tags unique to llm-app: vector-database, llm, hugging-face, retrieval-augmented-generation.
- Also covers Data & Retrieval.
- - You need a ready-to-run solution that directly integrates with various data sources like Sharepoint, Google Drive, S3, Kafka, PostgreSQL, and live APIs.
When NOT to use llm-app
- - You require custom deployment configurations that extend beyond the pre-set cloud templates available through llm-app.
- - There’s a need for tightly integrated support with data sources or APIs not explicitly mentioned, such as specialized CRM systems (Salesforce), which may lack direct template support in llm-app.
Choose RasaGPT if…
- RasaGPT is primarily Python; llm-app is Jupyter Notebook.
- Tags unique to RasaGPT: gpt-3, ai, fastapi, gpt-4.
- Also covers Model Training.
- RasaGPT ships Docker support for self-hosted deployment.
When NOT to use RasaGPT
- Last GitHub push was 241 days ago (slowing maintenance, Nov 12, 2025). Validate activity before betting a new project on RasaGPT.
- LLM Frameworks: Avoid a framework for a single prompt-and-retrieve call; the abstraction can cost more than it saves.
- Model Training: Try prompting and RAG first; fine-tuning is the answer to style/format, not missing knowledge.
- Vector Databases: Don't reach for a dedicated vector DB under ~100k vectors; pgvector on your existing Postgres is simpler to operate.
Explore
Sources
Every stat on this page traces to a dated GitHub sync, license file, enrichment field, or trust scan.
- GitHub stars (pathwaycom/llm-app) · observed Jul 11, 2026
- GitHub forks (pathwaycom/llm-app) · observed Jul 11, 2026
- Last push (pathwaycom/llm-app) · observed Jul 5, 2026
- License file (MIT) · observed Jul 11, 2026
- Decision facts (enrichment) · observed Jul 11, 2026
- Trust scan (lockfile / OSV) · observed Jul 11, 2026
- GitHub stars (paulpierre/RasaGPT) · observed Jul 11, 2026
- GitHub forks (paulpierre/RasaGPT) · observed Jul 11, 2026
- Last push (paulpierre/RasaGPT) · observed Nov 12, 2025
- License file (MIT) · observed Jul 11, 2026
- Trust scan (lockfile / OSV) · observed Jul 11, 2026
GitHub stars on cards: llm-app 59k · RasaGPT 2.5k (synced Jul 11, 2026).
Common questions
- What is the difference between llm-app and RasaGPT?
- llm-app: Ready-to-run cloud templates for RAG, AI pipelines, and enterprise search with live data.. RasaGPT: 💬 RasaGPT is the first headless LLM chatbot platform built on top of Rasa and Langchain. Built w/ Rasa, FastAPI, Langchain, LlamaIndex, SQLModel, pgvector, ngrok, telegram. See the comparison table for live GitHub stats and shared categories.
- When should I choose llm-app over RasaGPT?
- Choose llm-app over RasaGPT when llm-app is primarily Jupyter Notebook; RasaGPT is Python; Requirements: Requires Docker; The tool is Docker-friendly and designed to ensure synchronization with cloud-based storage solutions among others.; Tags unique to llm-app: vector-database, llm, hugging-face, retrieval-augmented-generation; Also covers Data & Retrieval; - You need a ready-to-run solution that directly integrates with various data sources like Sharepoint, Google Drive, S3, Kafka, PostgreSQL, and live APIs.
- When should I choose RasaGPT over llm-app?
- Choose RasaGPT over llm-app when RasaGPT is primarily Python; llm-app is Jupyter Notebook; Tags unique to RasaGPT: gpt-3, ai, fastapi, gpt-4; Also covers Model Training; RasaGPT ships Docker support for self-hosted deployment.
- When should I avoid llm-app?
- - You require custom deployment configurations that extend beyond the pre-set cloud templates available through llm-app. - There’s a need for tightly integrated support with data sources or APIs not explicitly mentioned, such as specialized CRM systems (Salesforce), which may lack direct template support in llm-app.
- When should I avoid RasaGPT?
- Last GitHub push was 241 days ago (slowing maintenance, Nov 12, 2025). Validate activity before betting a new project on RasaGPT. LLM Frameworks: Avoid a framework for a single prompt-and-retrieve call; the abstraction can cost more than it saves. Model Training: Try prompting and RAG first; fine-tuning is the answer to style/format, not missing knowledge. Vector Databases: Don't reach for a dedicated vector DB under ~100k vectors; pgvector on your existing Postgres is simpler to operate.
- Is llm-app or RasaGPT more popular on GitHub?
- llm-app has more GitHub stars (59,068 vs 2,464). Stars measure visibility, not whether either tool fits your constraints.
- Are llm-app and RasaGPT open source?
- Yes - both are open-source projects on GitHub (llm-app: MIT, RasaGPT: MIT).
- Where can I find alternatives to llm-app or RasaGPT?
- GraphCanon lists graph-backed alternatives at llm-app alternatives and RasaGPT alternatives (llm-app markdown twin, RasaGPT markdown twin), ranked by typed relationship edges rather than popularity votes.
- Is there a machine-readable version of this comparison?
- Yes. The markdown twin at this comparison mirrors this page for agents and LLM crawlers, with the same stats table and FAQ answers.
- Which is better maintained, llm-app or RasaGPT?
- llm-app: Very active. RasaGPT: Slowing. Compare maintenance labels, days since push, and release cadence in the trust section below - stars alone do not measure maintenance.
- Where are the full trust reports for llm-app and RasaGPT?
- GraphCanon publishes per-repo trust reports with dated maintenance, provenance, and scan summaries: llm-app trust report; RasaGPT trust report.