Launch today on Product Hunt ??
Hi there,
The Giskard team hopes you're having a good week! This month we have the pleasure to announce the release of Giskard v2!
Our new release extends our testing capabilities to Large Language Models (LLMs), packed with features and integrations designed to automate vulnerability detection, ease compliance, and foster collaborative efforts in AI quality assurance.
And this new release comes with a big launch on Product Hunt
If you already have an account and want to support our work, you can of course upvote us ??
?? Community news
1900+ Stars on our GitHub repository! ??
Special thanks to our amazing community for their support! We've reached an incredible milestone of 1.9k stars on our GitHub repository, and it wouldn't have been possible without you.
We also want to extend our gratitude to the following ML thought leaders and content creators, who made it all possible:
?? Evaluate your LLM application
You can now automatically test your LLMs for real-world vulnerabilities, as we’ve added to our library specialized testing for distinct applications such as Chatbots and RAG. We have also expanded the horizon by introducing support for testing custom LLM APIs, opening doors to a broader spectrum of models not limited to LangChain.
Our team has been working to further improve our LLM scan allowing you now to detect even more potential errors:
? Hallucinations & misinformation
? Harmful content
? Prompt injections
? Sensitive information disclosure
? Robustness issues
? Stereotypes & discrimination
?? Steps to run it in your notebook
After installing the different libraries, load your model (more info here ):
model = giskard.Model(
model=model_predict, # your model function
model_type="text_generation",
name="Your LLM application",
description="This model answers any question about
(your domain / business)",
feature_names=["question"], # input variables
needed by your model
)
Then, you can scan your model to detect vulnerabilities in a single line of code!
results = giskard.scan(model)
?? Test & debug your LLMs at scale
We’ve enhanced our platform which is now called Giskard Hub
To facilitate ML testing at enterprise-scale, we’ve added some new features:
领英推荐
?? New integrations
?? You can now test & debug your ML models in the Giskard Hub using HuggingFace Spaces
?? Weight & Biases: Giskard's automated vulnerability detection in conjunction with W&B's tracing tools creates the ideal combination for building and debugging ML apps from tabular to LLMs.
?? MLFlow: Automatically evaluate your ML model with MLflow's evaluation API by installing Giskard as a plugin.
?? Dagshub: With its multifaceted platform and free hosted MLflow server, Dagshub enhances your ML debugging experience of Giskard's vulnerability reports.
??We are now part of Intel Ignite
Giskard is part of Intel's Ignite-European deep tech accelerator, a program renowned for accelerating the growth of deep tech startups. It's an opportunity to grow with expert mentorship, connect with top industry players, and access Intel's global network and technological resources.
A huge thank you to Intel for this opportunity to scale our impact!
?? Video tutorials
In this new tutorial we'll show you how to test your LLM using our open-source Python library and its LLM scan.
Make sure to keep an eye on our YouTube channel as we'll be adding even more video tutorials! We'll be providing guidance on using Giskard, testing your ML models, and how to make ML models robust, reliable & ethical.
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??? What's next?
Giskard v2 is the result of 2 years in the making, involving a group of passionate ML engineers, ethicists, and researchers, and we are excited to show it to the world!
We're also working on expanding our testing capabilities to become the standard of LLM quality assurance, from automated model testing to debugging and monitoring.
Stay tuned for the latest updates!
Thank you so much, and see you soon! ??
The Giskard Team???
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