What Integrates with Google Cloud Confidential VMs?
Find out what Google Cloud Confidential VMs integrations exist in 2026. Learn what software and services currently integrate with Google Cloud Confidential VMs, and sort them by reviews, cost, features, and more. Below is a list of products that Google Cloud Confidential VMs currently integrates with:
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Google Cloud Platform
Google
Free ($300 in free credits) 60,933 RatingsGoogle Cloud is an online service that lets you create everything from simple websites to complex apps for businesses of any size. Customers who are new to the system will receive $300 in credits for testing, deploying, and running workloads. Customers can use up to 25+ products free of charge. Use Google's core data analytics and machine learning. All enterprises can use it. It is secure and fully featured. Use big data to build better products and find answers faster. You can grow from prototypes to production and even to planet-scale without worrying about reliability, capacity or performance. Virtual machines with proven performance/price advantages, to a fully-managed app development platform. High performance, scalable, resilient object storage and databases. Google's private fibre network offers the latest software-defined networking solutions. Fully managed data warehousing and data exploration, Hadoop/Spark and messaging. -
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Gemini Enterprise Agent Platform
Google
Free ($300 in free credits) 961 RatingsGemini Enterprise Agent Platform is Google Cloud’s next-generation system for designing and managing advanced AI agents across the enterprise. Built as the successor to Vertex AI, it unifies model selection, development, and deployment into a single scalable environment. The platform supports a vast ecosystem of over 200 AI models, including Google’s latest Gemini innovations and popular third-party models. It offers flexible development tools like Agent Studio for visual workflows and the Agent Development Kit for deeper customization. Businesses can deploy agents that operate continuously, maintain long-term memory, and handle multi-step processes with high efficiency. Security and governance are central, with features such as agent identity verification, centralized registries, and controlled access through gateways. The platform also enables seamless integration with enterprise systems, allowing agents to interact with data, applications, and workflows securely. Advanced monitoring tools provide real-time insights into agent behavior and performance. Optimization features help refine agent logic and improve accuracy over time. By combining automation, intelligence, and governance, the platform helps organizations transition to autonomous, AI-driven operations. It ultimately supports faster innovation while maintaining enterprise-grade reliability and control. -
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Deploy sophisticated applications using a secure and managed Kubernetes platform. GKE serves as a robust solution for running both stateful and stateless containerized applications, accommodating a wide range of needs from AI and ML to various web and backend services, whether they are simple or complex. Take advantage of innovative features, such as four-way auto-scaling and streamlined management processes. Enhance your setup with optimized provisioning for GPUs and TPUs, utilize built-in developer tools, and benefit from multi-cluster support backed by site reliability engineers. Quickly initiate your projects with single-click cluster deployment. Enjoy a highly available control plane with the option for multi-zonal and regional clusters to ensure reliability. Reduce operational burdens through automatic repairs, upgrades, and managed release channels. With security as a priority, the platform includes built-in vulnerability scanning for container images and robust data encryption. Benefit from integrated Cloud Monitoring that provides insights into infrastructure, applications, and Kubernetes-specific metrics, thereby accelerating application development without compromising on security. This comprehensive solution not only enhances efficiency but also fortifies the overall integrity of your deployments.
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Anjuna Confidential Computing Software
Anjuna Security
Anjuna® Confidential Computing software makes the public cloud the safest and most secure place to compute--completely isolating existing data and workloads from insiders, bad actors, and malicious code. Anjuna software deploys simply in minutes as software over AWS, Azure, and other public clouds. By employing the strongest secure enclave data protection available, Anjuna software effectively replaces complex legacy perimeter security without disrupting operations, applications, or IT. -
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Managed Service for Apache Spark is a unified Google Cloud platform designed to run Apache Spark workloads with greater ease, performance, and scalability. It offers both serverless and fully managed cluster deployment options, allowing users to choose the best model for their needs. The platform eliminates the need for infrastructure management, enabling teams to focus on data processing and analytics. With Lightning Engine, it delivers up to 4.9x faster performance than open-source Spark, improving efficiency for large-scale workloads. It integrates AI-powered tools like Gemini to assist with code generation, debugging, and workflow optimization. The service supports open data formats such as Apache Iceberg and connects seamlessly with Google Cloud services like BigQuery and Knowledge Catalog. It is designed for a wide range of use cases, including ETL pipelines, machine learning, and lakehouse architectures. Built-in security features and IAM integration ensure strong data governance. Flexible pricing models allow users to pay based on job execution or cluster uptime. Overall, it helps organizations modernize their data infrastructure and accelerate analytics workflows.
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HashiCorp Vault
HashiCorp
Ensure the protection, storage, and stringent management of tokens, passwords, certificates, and encryption keys that are essential for safeguarding sensitive information, utilizing options like a user interface, command-line interface, or HTTP API. Strengthen applications and systems through machine identity while automating the processes of credential issuance, rotation, and additional tasks. Facilitate the attestation of application and workload identities by using Vault as a reliable authority. Numerous organizations often find credentials embedded within source code, dispersed across configuration files and management tools, or kept in plaintext within version control systems, wikis, and shared storage. It is crucial to protect these credentials from being exposed, and in the event of a leak, to ensure that the organization can swiftly revoke access and remedy the situation, making it a multifaceted challenge that requires careful consideration and strategy. Addressing this issue not only enhances security but also builds trust in the overall system integrity. -
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Oasis Parcel
Oasis Labs
Create a more reliable product utilizing state-of-the-art data security and governance solutions. The privacy-centric data governance SDK is crafted to enable the use of your most critical data while ensuring it remains both secure and confidential. Included with the Parcel SDK is a preconfigured dispatcher that facilitates the quick establishment of an isolated environment for computations that prioritize privacy. Leveraging advanced secure-enclave technology, your data stays protected and confidential throughout its entire lifecycle. Whether you’re working on web applications or infrastructure stacks, the Parcel SDK seamlessly integrates with a wide variety of services and technologies. Supporting Typescript, the Parcel SDK can be effortlessly incorporated into your development processes, eliminating the need for unfamiliar languages or complex systems. Moreover, backed by a decentralized ledger, Parcel guarantees an unalterable record of all actions, allowing you to verify that your data is utilized in a compliant and responsible manner, ultimately fostering greater trust in your product. This innovative approach empowers organizations to prioritize both functionality and privacy in their data management strategies. -
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AMD Radeon™ ProRender serves as a robust physically-based rendering engine that allows creative professionals to generate breathtakingly photorealistic visuals. Leveraging AMD’s advanced Radeon™ Rays technology, this comprehensive and scalable ray tracing engine utilizes open industry standards to optimize both GPU and CPU performance, ensuring rapid and impressive outcomes. It boasts an extensive, native physically-based material and camera system, empowering designers to make informed choices while implementing global illumination. The unique combination of cross-platform compatibility, rendering prowess, and efficiency significantly shortens the time needed to produce lifelike images. Additionally, it utilizes the power of machine learning to achieve high-quality final and interactive renders much more quickly than traditional denoising methods. Currently, free plug-ins for Radeon™ ProRender are available for a variety of popular 3D content creation software, enabling users to craft remarkable, physically accurate renderings with ease. This accessibility broadens the creative possibilities for artists and designers across various industries.
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Thales Commander
Thales
Our command and intelligence suite equips users with advanced tools for the swift exploitation of information, enhancing decision-making via a unified tactical overview. Commander serves as our integrated Command, Control, Communications, and Intelligence (C4I) platform, designed on an open architecture that merges various operational information systems with tactical communication methods. MINDS acts as a pivotal multi-sensor image interpretation and dissemination system, essential for aerial operations, offering features such as data generation for reconnaissance missions, ground monitoring, targeting assistance, real-time digital capture, and the ability to scale operations effectively. NIES, our networked image exploitation system, provides invaluable battlefield insights utilizing multiple light wavelengths, promoting collaborative resource sharing and enhancing situational awareness across teams. Additionally, DMPS functions as a sophisticated digital mapping solution that supports 3D object extraction, geometric and radiometric image processing, and streamlines project data management for improved efficiency. Ultimately, each component of our suite plays a crucial role in ensuring operational effectiveness and informed decision-making on the field. -
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Intel Open Edge Platform
Intel
The Intel Open Edge Platform streamlines the process of developing, deploying, and scaling AI and edge computing solutions using conventional hardware while achieving cloud-like efficiency. It offers a carefully selected array of components and workflows designed to expedite the creation, optimization, and development of AI models. Covering a range of applications from vision models to generative AI and large language models, the platform equips developers with the necessary tools to facilitate seamless model training and inference. By incorporating Intel’s OpenVINO toolkit, it guarantees improved performance across Intel CPUs, GPUs, and VPUs, enabling organizations to effortlessly implement AI applications at the edge. This comprehensive approach not only enhances productivity but also fosters innovation in the rapidly evolving landscape of edge computing. -
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Google Cloud Dataflow
Google
Data processing that integrates both streaming and batch operations while being serverless, efficient, and budget-friendly. It offers a fully managed service for data processing, ensuring seamless automation in the provisioning and administration of resources. With horizontal autoscaling capabilities, worker resources can be adjusted dynamically to enhance overall resource efficiency. The innovation is driven by the open-source community, particularly through the Apache Beam SDK. This platform guarantees reliable and consistent processing with exactly-once semantics. Dataflow accelerates the development of streaming data pipelines, significantly reducing data latency in the process. By adopting a serverless model, teams can devote their efforts to programming rather than the complexities of managing server clusters, effectively eliminating the operational burdens typically associated with data engineering tasks. Additionally, Dataflow’s automated resource management not only minimizes latency but also optimizes utilization, ensuring that teams can operate with maximum efficiency. Furthermore, this approach promotes a collaborative environment where developers can focus on building robust applications without the distraction of underlying infrastructure concerns. -
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NVIDIA DRIVE
NVIDIA
Software transforms a vehicle into a smart machine, and the NVIDIA DRIVE™ Software stack serves as an open platform that enables developers to effectively create and implement a wide range of advanced autonomous vehicle applications, such as perception, localization and mapping, planning and control, driver monitoring, and natural language processing. At the core of this software ecosystem lies DRIVE OS, recognized as the first operating system designed for safe accelerated computing. This system incorporates NvMedia for processing sensor inputs, NVIDIA CUDA® libraries to facilitate efficient parallel computing, and NVIDIA TensorRT™ for real-time artificial intelligence inference, alongside numerous tools and modules that provide access to hardware capabilities. The NVIDIA DriveWorks® SDK builds on DRIVE OS, offering essential middleware functions that are critical for the development of autonomous vehicles. These functions include a sensor abstraction layer (SAL) and various sensor plugins, a data recorder, vehicle I/O support, and a framework for deep neural networks (DNN), all of which are vital for enhancing the performance and reliability of autonomous systems. With these powerful resources, developers are better equipped to innovate and push the boundaries of what's possible in automated transportation.
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