JFrog Collaborates with NVIDIA to Deliver Secure AI Models With NVIDIA NIM
Aiming to meet the increasing demand for enterprise-ready generative AI, the
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JFrog and NVIDIA Collaborating to Deliver Secure AI Models at Scale (Graphic: Business Wire)
“As organizations rapidly adopt AI technology, it's essential to implement practices that ensure their efficiency and safety, and that incorporate AI responsibly,” said
With the rise and accelerated demand for AI in software applications, data scientists and ML engineers face significant challenges when scaling ML model deployments in enterprise environments. Fragmented asset management, security vulnerabilities, compliance issues, and performance bottlenecks are compounded by the complexities of integrating AI workflows with existing software development processes and the requirement for flexible, secure deployment options across various environments. This compounded complexity can result in very long, expensive deployment cycles and, in many cases, failure of AI initiatives.
“As enterprises scale their generative AI deployments, a central repository can help them rapidly select and deploy models that are approved for development,” said
JFrog Artifactory provides a single solution for housing and managing all the artifacts, binaries, packages, files, containers, and components for use throughout software supply chains. The JFrog Platform’s integration with NVIDIA NIM is expected to incorporate containerized AI models as software packages into existing software development workflows. By coupling NVIDIA NGC – a hub for GPU-optimized deep learning, ML and HPC models – with the JFrog platform and JFrog Artifactory model registry, organizations will be able to maintain a single source of truth for all software packages and AI models, while leveraging enterprise DevSecOps best practices to gain visibility, governance, and control across their software supply chain.
The integration between the JFrog Platform and NVIDIA NIM is anticipated to deliver multiple benefits, including:
- Unified Management: Centralized access control and management of NIM microservice containers alongside all other assets, including proprietary artifacts and open-source software dependencies, in JFrog Artifactory as the model registry to enable seamless integration with existing DevSecOps workflows.
- Comprehensive Security and Integrity: Continuous scanning at every stage of development - including containers and dependencies - delivering contextual insights across NIM microservices with JFrog auditing and usage statistics that drive compliance.
- Exceptional Model Performance and Scalability: Optimized AI application performance using NVIDIA accelerated computing infrastructure, offering low latency and high throughput for scalable deployment of LLMs to large-scale production environments.
- Flexible Deployment: Flexible deployment options via JFrog Artifactory, including self-hosted, multi-cloud, and air-gap deployment options.
For a deeper look at the integration of NVIDIA NIM into the JFrog Platform, read this blog or visit https://jfrog.com/nvidia-and-jfrog, where interested parties can also sign up for the beta program.
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