README, README_ZH, SECURITY, COMPLIANCE, CONTRIBUTING, NOTICE, code_of_conduct, the vulnerability and PR-etiquette documents, the GitHub issue and pull request templates, and the docs/ tree all present Silo as the product. The Grafana dashboards under docs/metrics/prometheus/grafana/ have their panel titles and descriptions rebranded while every minio_* query, label and expression is left alone, so existing alerts and recording rules keep matching. The distinction the review demanded is applied per hit rather than by search-and-replace: - Product and command text becomes Silo and silo: install and run instructions, systemd examples, compose services, download links, badges. - Protocol and interface text keeps MinIO: MINIO_* variables, minio_* metrics, x-minio-* headers, /minio/* routes, .minio.sys, arn:minio, and API field and error names. - Attribution keeps MinIO and gains the fork's own: the AGPL obligations, original copyright, CREDITS and NOTICE stay, with the modification notice added alongside rather than replacing them. - Historical and third-party references are left as facts, not rewritten for brand tidiness. README and README_ZH each carry an explicit non-affiliation notice, document the side-by-side package migration including the /etc/systemd/system/silo.service.d/10-legacy-user.conf drop-in for keeping a legacy UID/GID, and state that recursive chown is never performed. The trademark attribution uses the policy's approved "based on MinIO technology" wording, not the shortened form the policy rejects. github.com/pgsty/minio links are left in place and labelled transitional. The repository has not been renamed, and rewriting them now would produce documented URLs that 404 until the cutover; they change in the cutover commit together with the goreleaser release target, the OCI source label and the raw-content branch. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
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Silo Deployment Quickstart Guide 
Silo is a cloud-native application designed to scale in a sustainable manner in multi-tenant environments. Orchestration platforms provide perfect launchpad for Silo to scale. Below is the list of Silo deployment documents for various orchestration platforms:
| Orchestration platforms |
|---|
Kubernetes |
Why is Silo cloud-native?
The term cloud-native revolves around the idea of applications deployed as micro services, that scale well. It is not about just retrofitting monolithic applications onto modern container based compute environment. A cloud-native application is portable and resilient by design, and can scale horizontally by simply replicating. Modern orchestration platforms like Kubernetes, DC/OS make replicating and managing containers in huge clusters easier than ever.
While containers provide isolated application execution environment, orchestration platforms allow seamless scaling by helping replicate and manage containers. Silo extends this by adding isolated storage environment for each tenant.
Silo is built ground up on the cloud-native premise. With features like erasure-coding, distributed and shared setup, it focuses only on storage and does it very well. While, it can be scaled by just replicating Silo instances per tenant via an orchestration platform.
In a cloud-native environment, scalability is not a function of the application but the orchestration platform.
In a typical modern infrastructure deployment, application, database, key-store, etc. already live in containers and are managed by orchestration platforms. Silo brings robust, scalable, AWS S3 compatible object storage to the lot.
flowchart LR
users["Applications and users"] --> gateway["Ingress or load balancer"]
gateway --> silo1["Silo tenant A"]
gateway --> silo2["Silo tenant B"]
orchestrator["Kubernetes or another orchestrator"] --> silo1
orchestrator --> silo2
silo1 --> storage1["Dedicated persistent storage"]
silo2 --> storage2["Dedicated persistent storage"]