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38 changes: 16 additions & 22 deletions README.md
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<!-- PROJECT LOGO -->
<img referrerpolicy="no-referrer-when-downgrade" src="https://static.scarf.sh/a.png?x-pxid=03d804c9-e44a-471e-b56d-81085bc925ec" />
<img referrerpolicy="no-referrer-when-downgrade" src="https://static.scarf.sh/a.png?x-pxid=03d804c9-e44a-471e-b56d-81685bc925ec" />

<br />
<div align="center">
Expand Down Expand Up @@ -55,24 +55,20 @@ you can adapt for your application. We maintain a growing list of projects
from various ML domains including time-series, tabular data, computer vision,
etc.

# 🧱 Project List

A list of updated and maintained projects by the ZenML team and the community:

| Project | Tags | Tools |
|---------|------|-------|
| [ZenML Support Agent](zenml-support-agent) | `NLP` `LLM Agents` `Conversational AI` `RAG` `Vector Stores` `Production MLOps` | `langchain` `llama_index` `faiss` `openai` |
| [ZenCoder](zencoder) | `NLP` `LLM` `Model Fine-tuning` `Transfer Learning` `Parameter Optimization` | `huggingface` `pytorch` `wandb` |
| [Complete Guide to LLMs](llm-complete-guide) | `NLP` `LLM` `RAG` `Fine-tuning` `Model Evaluation` `Embeddings` `Synthetic Data` | `openai` `supabase` `huggingface` `argilla` `gradio` `anthropic` `litellm` |
| [Gamesense](gamesense) | `NLP` `Parameter-Efficient Fine-tuning` `LoRA` `LLM` `Distributed Training` | `huggingface` `pytorch` `accelerate` `peft` `phi-2` |
| [End-to-end Computer Vision](end-to-end-computer-vision) | `Computer Vision` `Object Detection` `Data Labeling` `Human-in-the-Loop` | `pytorch` `label_studio` `fiftyone` `vertex-ai` `gcp` `yolov8` |
| [Magic Photobooth](magic-photobooth) | `Image Generation` `Fine-tuning` `Stable Diffusion` `LoRA` `Video Generation` | `modal` `kubernetes` `huggingface` `flux` `stable-video-diffusion` |
| [Huggingface to Sagemaker](huggingface-sagemaker) | `Model Deployment` `NLP` `Sentiment Analysis` `Model Training` `CI/CD` | `pytorch` `mlflow` `huggingface` `aws` `sagemaker` `s3` `kubeflow` `slack` `github` |
| [Databricks Production QA Demo](databricks-production-qa-demo) | `Quality Assurance` `CI/CD` `Model Monitoring` `Model Explainability` `Data Drift` | `databricks` `mlflow` `evidently` `shap` `slack` |
| [Eurorate Predictor](eurorate-predictor) | `ETL` `Time Series` `Feature Engineering` `Regression` `Workflow Orchestration` | `cloud-composer` `airflow` `vertex-ai` `bigquery` `xgboost` `gcp` |
| [Nightwatch AI](nightwatch-ai) | `NLP` `Text Summarization` `Database Integration` `LLM` `Automated Reporting` | `openai` `supabase` `slack` `github-actions` `gcp` |
| [Sign Language Detection with YOLOv5](sign-language-detection-yolov5) | `Computer Vision` `Object Detection` `Real-time Processing` `Model Deployment` | `mlflow` `gcp` `bentoml` `vertex-ai` `docker` |
| [ResearchRadar](research-radar) | `AI Literature Discovery` `Research Paper Classification` `Model Training` `Model Evaluation` `Model Comparison` | `anthropic` `huggingface` `pytorch` `transformers` `docker` |
| Project | Domain | Key Features | Core Technologies |
|---------|--------|-------------|-------------------|
| [ZenML Support Agent](zenml-support-agent) | 🤖 LLMOps | 🔍 RAG, 📊 Vector DB, 💬 Conversational | langchain, llama_index, openai |
| [ZenCoder](zencoder) | 🤖 LLMOps | 🧠 Fine-tuning, 📈 Transfer Learning | huggingface, pytorch, wandb |
| [Complete Guide to LLMs](llm-complete-guide) | 🤖 LLMOps | 🔍 RAG, 🧠 Fine-tuning, 📊 Evaluation | openai, huggingface, anthropic |
| [Gamesense](gamesense) | 🤖 LLMOps | 🧠 LoRA, ⚡ Efficient Training | pytorch, peft, phi-2 |
| [Nightwatch AI](nightwatch-ai) | 🤖 LLMOps | 📝 Summarization, 📊 Reporting | openai, supabase, slack |
| [ResearchRadar](research-radar) | 🤖 LLMOps | 📝 Classification, 📊 Comparison | anthropic, huggingface, transformers |
| [End-to-end Computer Vision](end-to-end-computer-vision) | 👁️ Vision | 🎯 Object Detection, 🏷️ Labeling | pytorch, label_studio, yolov8 |
| [Magic Photobooth](magic-photobooth) | 👁️ Vision | 🖼️ Image Gen, 🎬 Video Gen | stable-diffusion, huggingface |
| [Sign Language Detection](sign-language-detection-yolov5) | 👁️ Vision | 🎯 Object Detection, ⚡ Real-time | mlflow, bentoml, vertex-ai |
| [Huggingface to Sagemaker](huggingface-sagemaker) | 🚀 MLOps | 🔄 CI/CD, 📦 Deployment | mlflow, sagemaker, kubeflow |
| [Databricks Production QA](databricks-production-qa-demo) | 🚀 MLOps | 📊 Monitoring, 🔍 Quality Assurance | databricks, evidently, shap |
| [Eurorate Predictor](eurorate-predictor) | 📊 Data | ⏱️ Time Series, 🔄 ETL | airflow, bigquery, xgboost |

# 💻 System Requirements

Expand All @@ -81,7 +77,7 @@ Read [our docs](https://docs.zenml.io/getting-started/installation) for
installation details.

- Linux or macOS.
- Python 3.7, 3.8, 3.9 or 3.10
- Python >=3.9

# 🪃 Contributing

Expand Down Expand Up @@ -132,7 +128,6 @@ the Apache License Version 2.0.
| 🗳 **[Vote for Features]** | Pick what we work on next! |
| 📓 **[Docs]** | Full documentation for creating your own ZenML pipelines. |
| 📒 **[API Reference]** | Detailed reference on ZenML's API. |
| 👨‍🍳 **[MLStacks]** | Terraform-based infrastructure recipes for pre-made ZenML stacks. |
| ⚽️ **[Examples]** | Learn best through examples where ZenML is used. We've got you covered. |
| 📬 **[Blog]** | Use cases of ZenML and technical deep dives on how we built it. |
| 🔈 **[Podcast]** | Conversations with leaders in ML, released every 2 weeks. |
Expand All @@ -146,7 +141,6 @@ the Apache License Version 2.0.
[Vote for Features]: https://zenml.io/discussion
[Docs]: https://docs.zenml.io/
[API Reference]: https://apidocs.zenml.io/
[MLStacks]: https://github.com/zenml-io/mlops-stacks
[Examples]: https://github.com/zenml-io/zenml/tree/main/examples
[Blog]: https://blog.zenml.io/
[Podcast]: https://podcast.zenml.io/
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