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dsaed

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KitOps modules are now available on the Daggerverse

daggerverse.dev
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How to Run Meta Llama 3.1 405B with Nebius AI Studio API

nebius.com
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ModelKit: Transforming AI/ML artifact sharing and management across lifecycles

kitops.ml
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KitOps: Only Standards-Based Packaging and Versioning Tool for AI/ML Projects

kitops.ml
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Honeycomb – A Case Study in Fine Grained Authorization

permit.io
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Ask HN: Best practices for the 24 hours before a Product Hunt launch?

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Tool that can bring MFST "recall" feature" to any PC platform with added privacy

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comments

dsaed
·2 tahun yang lalu·discuss
To accelerate our industry’s path to an open standard, we have submitted KitOps to the CNCF so that others can more easily contribute to it, and benefit from it.
dsaed
·2 tahun yang lalu·discuss
KitOps is a packaging, versioning, and sharing system for AI/ML projects, using open standards to work seamlessly with your existing AI/ML, DevOps, and development tools, all stored in your enterprise container registry.

KitOps generates a ModelKit for your AI/ML project, including everything needed for local reproduction or production deployment. ModelKits are immutable, signable, and live in your registry, making them easy to track, control, and audit.

ModelKits simplify collaboration between data scientists, developers, and SREs by allowing selective unpacking to save time and space. Teams use KitOps for secure, efficient AI/ML project management across the lifecycle.

Use KitOps for all AI/ML projects:

Predictive models Large language models Computer vision models Multi-modal and audio models, etc.
dsaed
·2 tahun yang lalu·discuss
As an OCI-compliant packaging format, ModelKit encapsulates datasets, code, configurations, and models into a single, standardized unit. This approach not only streamlines the development process but also ensures broad compatibility and integration with a vast array of tools and platforms.
dsaed
·2 tahun yang lalu·discuss
Yes, it supports around 50 OCI registries and tools.
dsaed
·2 tahun yang lalu·discuss
AI is everywhere, but security and privacy remain major concerns. Tools that leverage LLMs offline and maintain strong context awareness can offer the best solution for assisting users while safeguarding their privacy.