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Site Reliability Engineer

Site Reliability Engineer

Staff Storage Platform Engineer (AI Storage) - Radian Arc

Submer

Удалённоlead

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About Radian Arc.

Radian Arc provides an infrastructure-as-a-service (IaaS) platform for running cloud gaming, artificial intelligence and machine learning applications inside telecommunication carrier networks. Our teams across the USA, Australia, Central Europe, Malaysia, Singapore and Japan offer telecom operators a GPU-based edge computing platform without the need for capital expenditure, facilitating low latency and improved economics for value-added services and the monetization of 5G investments.

What impact you will have

Mission: Design, build, and operate the AI storage layer powering large-scale GPU infrastructure, enabling datasets, model artifacts, checkpoints, and inference state to be delivered to compute clusters with extremely high throughput and predictable latency.

You will play a key role in architecting and evolving the storage platform across edge and core deployments, supporting the full lifecycle of AI workloads including distributed inference, fine-tuning, and large-scale model training. The role spans multiple storage architectures used across the platform, including hyperconverged storage currently based on StorPool, local NVMe storage for latency-sensitive workloads and edge deployments, and disaggregated AI storage platforms such as VAST Data and Weka.

As the first dedicated storage platform role in the organization, this position combines Staff-level architectural ownership, technical direction, and cross-functional influence with hands-on execution across storage design, deployment, performance engineering, troubleshooting, platform integration, and operational improvement.

A key responsibility of this role is designing and optimizing the storage architecture underlying distributed inference stacks such as NVIDIA Dynamo, llm-d, or similar inference orchestration frameworks. This includes ensuring that storage systems efficiently support inference workloads through optimized dataset access, model artifact distribution, checkpoint handling, and KV-cache persistence. You will design scalable storage systems capable of feeding thousands of GPUs while balancing throughput, latency, resilience, and cost efficiency, and work closely with compute, networking, and platform engineering teams to ensure seamless integration with the platform orchestration layer.

Because this is currently the primary storage platform role in the company, the position is intentionally hybrid: you are expected to operate at L6 / Staff in terms of long-term design, standards, cross-team influence, and platform direction, while also directly executing critical storage work that, in a larger organization, would be distributed across multiple engineers.

What you'll do

Storage Architecture

  • Design scalable AI storage architectures supporting both edge and core deployments.
  • Define storage strategies for distributed inference, fine-tuning, and training workloads.
  • Architect solutions across multiple storage models:
    • Hyperconverged infrastructure such as StorPool,
      • Local NVMe storage,
      • Disaggregated storage systems such as VAST, Weka, and related architectures.
  • Define reference architectures, design principles, and reusable patterns for storage platforms so future deployments follow standards rather than one-off implementations.
  • Evaluate trade-offs across throughput, latency, resilience, data locality, cost, and operability, and make clear recommendations to engineering and leadership.
  • Influence the long-term storage roadmap, including architecture choices for edge, core, hyperconverged, and disaggregated environments.

AI Workload Optimization

  • Optimize storage throughput and latency for GPU-heavy clusters.
  • Design data locality strategies to minimize dataset movement across the network.
  • Benchmark storage performance under real AI workloads.
  • Optimize I/O patterns for large dataset ingestion, checkpointing, and model artifact distribution.
  • Work directly with compute teams to ensure storage architecture matches the access patterns of distributed training, fine-tuning, and inference frameworks.
  • Establish performance baselines and validation methods so storage platforms are tested against realistic AI workload behavior rather than only synthetic benchmarks.

Platform Integration

  • Implement and maintain CSI drivers.
  • Integrate storage platforms with Kubernetes and orchestration systems.
  • Integrate block, object, and shared file storage into the platform.
  • Design multi-tenant storage architectures supporting isolated workloads.
  • Ensure storage capabilities are correctly exposed into platform services, workload orchestration, and lifecycle automation.
  • Define standards for how storage should be integrated into Kubernetes-based and platform-managed environments across different deployment models.

Distributed Storage Systems

  • Contribute to the design of exabyte-scale storage platforms.
  • Support S3-compatible object storage, distributed file systems, and block storage.
  • Integrate storage clusters into heterogeneous customer environments.
  • Design storage systems with clear fault domains, lifecycle management approaches, scaling paths, and operational boundaries.
  • Define reusable operating patterns for multi-cluster and multi-site storage environments.

Distributed Inference Storage Architecture

  • Design the storage architecture supporting distributed inference platforms such as NVIDIA Dynamo, llm-d, or similar frameworks.
  • Optimize storage performance for large-scale LLM inference workloads.
  • Design efficient strategies for KV-cache persistence and retrieval using distributed storage platforms such as VAST or Weka.
  • Optimize storage access patterns for token generation pipelines and high-concurrency inference workloads.
  • Ensure inference infrastructure scales efficiently across thousands of GPUs.
  • Partner with platform and inference teams to ensure storage design supports evolving inference architectures and avoids becoming a bottleneck in throughput, latency, or concurrency.

AI Data Path Optimization

  • Design high-performance data paths between GPU clusters and distributed storage.
  • Optimize performance using technologies such as:
    • GPU Direct Storage,
      • RDMA / RoCE,
      • NVMe-oF.
  • Ensure predictable latency for inference serving workloads.
  • Define architectural approaches for storage-to-GPU data movement that balance performance gains with operational complexity and deployment practicality.

Performance Engineering

  • Work with technologies such as the following, to maximize data throughput to GPU clusters.:
    • RDMA,
      • RoCE,
      • GPU Direct Storage,
      • SPDK,
      • NVMe-oF,
  • Lead storage performance investigations across hardware, network, OS, filesystem, and workload interaction points.
  • Drive systematic tuning of storage paths for large-scale GPU environments and define repeatable validation and benchmarking approaches for future deployments.

Reliability & Operations

  • Improve the reliability, durability, and observability of the storage stack.
  • Collaborate with operations teams to monitor storage systems using telemetry and metrics.
  • Optimize performance, latency, and resilience of storage infrastructure.
  • Lead incident response and root-cause analysis for major storage events and chronic performance issues.
  • Translate operational pain points and incidents into durable design changes, standards, runbooks, and architectural improvements.
  • Establish measurable benchmarks for storage reliability, performance consistency, recovery behavior, and operability across deployments.

Engineering Execution & Delivery

  • Lead end-to-end engineering delivery of storage infrastructure from architecture and validation through production rollout.
  • Support practical implementation of storage platforms in both new deployments and existing environments.
  • Validate storage BOMs and architecture assumptions together with infrastructure, compute, and deployment teams.
  • Contribute detailed input into datacenter layouts, node profiles, and storage topology decisions.
  • Drive scaling strategies, capacity planning, and storage lifecycle decisions.
  • Ensure storage changes are executed safely with minimal customer impact.

Act as both the architectural owner and the practical execution lead for critical storage initiatives during the build-out phase of the storage function.
*

Cross-Team Collaboration

  • Work closely with compute, networking, platform, DevOps, and operations teams.
  • Ensure storage integrates seamlessly into the AI platform architecture.
  • Act as the primary storage design authority across the organization, guiding adjacent teams on how storage constraints and capabilities should shape platform decisions.
  • Communicate architectural decisions, trade-offs, risks, and operational implications clearly to stakeholders.
  • Share knowledge and mentor engineers on high-performance storage design.
  • Raise the technical bar by helping adjacent teams better understand storage behavior in distributed AI environments.

Technical Stack

  • CSI.
  • NVMe / NVMe-oF.
  • Distributed file systems.
  • Object storage.
  • Linux storage stack.
  • RDMA / RoCE.
  • GPU Direct Storage.
  • SPDK.
  • StorPool.
  • VAST Data.
  • Weka.
  • MinioFS.
  • Rook Ceph.

What you'll need

Core Experience

  • Strong hands-on experience designing and operating distributed storage systems for high-performance compute environments.
  • Proven experience designing storage architectures for large-scale AI inference or training platforms, including dataset distribution, checkpointing, and KV-cache storage patterns.
  • Deep knowledge of the Linux storage and I/O stack.
  • Strong understanding of AI workload data access patterns.
  • Experience optimizing storage for GPU-accelerated workloads.
  • Familiarity with Kubernetes storage integrations such as CSI.
  • Experience operating large-scale storage clusters.
  • Experience owning both architecture and direct implementation in lean or fast-scaling environments is strongly preferred.

Advanced AI Storage Expertise

The candidate should have deep expertise in designing and operating storage platforms optimized for GPU-heavy environments and distributed AI workloads.

This includes a strong understanding of how training, fine-tuning, and inference systems interact with storage, and how storage architecture affects throughput, latency, concurrency, checkpoint recovery, dataset distribution, and serving performance.

Relevant expertise includes:

  • Strong understanding of storage access patterns for distributed inference and training.
  • Experience designing storage platforms that support large dataset ingestion and model artifact distribution at scale.
  • Practical experience tuning storage architectures for checkpointing, distributed file access, object access, and high-concurrency inference.
  • Familiarity with storage patterns for KV-cache persistence and retrieval.
  • Experience optimizing data locality and reducing unnecessary network movement between storage and compute.
  • Understanding of how storage performance affects large-scale AI frameworks, model-serving systems, and inference orchestration layers.

Systems & Troubleshooting

  • Ability to debug complex cross-layer issues spanning:
    • Storage hardware,
      • Networking,
      • Linux kernel and I/O paths,
      • Filesystems,
      • Object and block storage layers,
      • Kubernetes integrations,
      • Distributed workload behavior.
  • Strong knowledge of storage hardware, NVMe devices, storage fabrics, and high-performance data paths.
  • Experience designing storage observability systems.
  • Strong ability to act as the senior escalation point for ambiguous, high-impact, and multi-domain technical issues.

Automation

  • Strong automation skills using Python and/or Bash.
  • Experience applying software engineering practices to storage automation and operational tooling.
  • Experience building reusable tooling, standards, validation patterns, or lifecycle automation that increase leverage across teams.

Leadership

  • Proven ability to lead complex technical initiatives across teams.
  • Comfortable collaborating across engineering, operations, deployment teams, vendors, and platform stakeholders.
  • Strong systems-level thinking balancing performance, reliability, scalability, operability, and cost efficiency.
  • Demonstrated ability to set architectural direction and drive adoption of engineering standards across an organization.
  • Proven ability to lead through technical influence across multiple teams and domains, without relying on formal people management authority.
  • Strong mentoring capability and ability to raise the technical level of adjacent engineering teams.
  • Able to balance short-term execution needs with long-term platform design, operational sustainability, and cost efficiency.

What we offer

  • Attractive compensation package reflecting your expertise and experience.
  • A great work environment characterised by friendliness, international diversity, flexibility, and a hybrid-friendly approach.
  • You'll be part of a fast-growing scale-up with a mission to make a positive impact, offering an exciting career evolution.

Our job titles may span more than one job level. The actual base pay is dependent on a number of factors, such as transferable skills, work experience, business needs and market demands.

Our inclusive responsibility

Radian Arc is committed to creating a diverse and inclusive environment and is proud to be an equal opportunity employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, gender, gender identity or expression, sexual orientation, national origin, genetics, disability, age, veteran status, or any other protected category under applicable law.

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Правила розыгрыша

Site Reliability Engineer

Ingénieur Système, Sauvegarde et réseaux à Paris H/F

Free-Work

Удалённоfulltimesenior

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Описание вакансии

Dans le cadre du développement de notre équipe IT chez l'un de nos clients grands comptes, nous recherchons un(e) Ingénieur(e) Système Sauvegarde réseaux H/F afin d'assurer l'administration, la maintenance et l'évolution des infrastructures systèmes de nos environnements clients.

Vos missions seront les suivantes :

  • Participer aux projets d'évolutions de la plateforme technique de la Video Factory ( tête de réseau OTT et IPTV
  • Conception / participation au POC avec le N3 (les experts) / intégration / ingénierie / recette unitaire / recette des workflow et documentation des briques techniques et des procédures.
  • Assurer la maintenance en condition opérationnelle de la plateforme
  • Organisation des sauvegardes et des montées de version des équipements IT (VM, NAS, OS (linux et windows)...) et Vidéos (encodeurs, DCM, serveurs d'origine, sondes ) de la plateforme.
  • Analyse des risques et des impacts potentiels et planification en HNO le cas échéant.
  • Assurer le « run » de la plateforme en tant que support niveau 2 en soutien des équipes support de niveau 0 et 1
  • Analyse d'incidents et résolutions, escalade au N3 et aux fournisseurs (ouverture et suivi des tickets) le cas échéant, communication sur les avancées les plus significatives et les impacts majeurs,
  • Organiser les activités des fournisseurs (mises à jour et évolution technique),
  • Assurer le suivi des déploiements et mettre en place les contrôles (recette).
  • Participer à l'amélioration de l'organisation du support global de la plate-forme technique :
  • Formation des équipes de maintenance, documentation des procédures d'exploitation.

     Des missions complémentaires peuvent être confiées.

Référence de l'offre : cmk6d3cswx

Profil candidat:

Profil recherché :

Issu(e) d'une formation supérieure en informatique (BAC+5 / Diplôme d'ingénieur),

Vous justifiez d'au moins 5 ans d'expérience sur un poste similaire.

Compétences techniques souhaitées :

  • Maîtrise des environnements Windows Server, Linux et Vmware (des connaissances sur Nutanix est un plus).
  • Bonne connaissance des environnements vidéo et audio sur IP.
  • Connaissance des réseaux IP et de l'adressage multicast.
  • Maitrise des outils d'analyse de qualité vidéo ainsi que des outils de supervision.
  • Bonnes capacités d'analyse et de résolution de problèmes.
  • Autonomie, rigueur et bon relationnel.
  • Capacité à travailler en équipe et à intervenir dans des environnements de production

Environnement technique :

DCM, Anevia, Imagine, Nevion, Harmonic xOS, OpenHeadEnd, Elemental, USP.

Produits systèmes, virtualisation : VMware, Wallix, Nutanix, NAS, Debian, Windows Server, FTP

Ce que nous vous proposons :

Valeurs : en plus de nos 3 fondamentaux que sont l'audace, la bonne foi et la réactivité, nous garantissons un management à l'écoute et de proximité, ainsi qu'une ambiance familiale.

Contrat : CDI ou Freelance

Localisation : Paris

Package rémunération & avantages :

  • Le salaire : rémunération annuelle brute selon profil et compétences
  • Les basiques : mutuelle familiale et prévoyance, titres restaurant, remboursement transport en commun à 50%, avantages du CSE (culture, voyage, chèque vacances, et cadeaux), RTT (jusqu'à 12 par an), plan d'épargne, prime de participation
  • Nos plus : forfait mobilité douce & Green (vélo/trottinette et covoiturage), prime de cooptation de 1000 € brut, e-shop de matériel informatique à des prix préférentiels (smartphone, tablette, etc.)
  • Votre carrière : plan de carrière, dispositifs de formation techniques & fonctionnels, passage de certifications, accès illimité à Microsoft Learn
  • La qualité de vie au travail : télétravail avec indemnité, évènements festifs et collaboratifs, accompagnement handicap et santé au travail, engagements RSE

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Site Reliability Engineer

SAP DevOps Engineer (f/m/d)

E.ON Digital Technology

Удалённо

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Описание вакансии

You have a passion for technology and want to make the world a greener place?
Then become a playmaker (f/m/d) and join our team as SAP DevOps Engineer (f/m/d) at E.ON Digital Technology.

We play a key role in shaping the energy transition by leading E.ON's digital transformation across Europe. We explore new paths by developing ideas, breaking new ground, making visions reality, and bringing new technologies to life. We deliver sustainable technology solutions because…

… it’s on us to make new energy work!
The Team
– your impact

At E.ON, the SAP Engineering Chapter is a collective of innovative minds dedicated to delivering world-class SAP architecture, SAP software development and SAP engineering capabilities across our segments and product teams. By joining us, you will play a critical role in keeping E.ON's SAP architecture and capabilities modern, secure and excellent.

Your Role –
meaningful & rewarding

As a SAP DevOps Engineer (f/m/d) at E.ON, you will be responsible for designing, developing, training and maintaining SAP DevOps solutions for our SAP system landscape and platforms. You will work closely with the SAP DevOps teams and developers, and other stakeholders to ensure the provisioning of a modern, user-friendly, state-of-the-art SAP DevOps pipeline.

  • Design, implement and continuously improve DevOps concepts, CI/CD templates, pipelines and automation for SAP landscapes (e.g. SAP BTP, S/4HANA)
  • Enable reliable build, test and deployment processes across SAP Cloud and on-premise environments
  • Establish observability concepts for SAP BTP and on-premise applications for monitoring, health checks, alerts and APM by using tools such as SAP Cloud ALM, New Relic and Uptrends
  • Collaborate closely with SAP development, architecture, security and operations teams
  • Conduct DevOps maturity assessments and guide teams on their DevOps Journey
  • Ensure high availability, performance, security and compliance of SAP systems
  • Troubleshoot complex problems and support root cause analysis
  • Continuously evaluate new SAP DevOps tools, technologies and best practices

Your Profile
– authentic & open-minded

  • Strong experience in DevOps, platform engineering or operations within SAP environments
  • Hands-on experience with CI/CD and security, as well as quality tooling (e.g. GitLab CI/CD, SonarQube, Renovate or similar)
  • Strong knowledge in development, automated testing and testing strategies
  • Experience with scripting and automation (e.g. Bash, Groovy)
  • Solid knowledge of SAP S/4HANA, SAP BTP and related deployment and transport mechanisms
  • Knowledge of Kubernetes and container technologies and IaaC principles is a plus
  • Strong understanding of security, monitoring and reliability concepts
  • Structured, proactive and solution-oriented working style
  • Fluent in English

Our Benefits
– smart & useful

  • Advance your development: We grow and we want you to grow with us. Learning on the job, exchanging with others, or taking part in an individualtraining – our learning culture enables you to bring your personal and professional development to the next level.
  • Recharge your battery: You have 30 days of paid vacation per year plus Christmas and New Year's Eve off. Your battery still needs charging? You canexchange parts of your salary for more paid vacation or you can take a sabbatical.
  • Enjoy hybrid work: We combine office collaboration with focused work from home. It’s also possible to go on workation for up to 20 days per year withinEurope.
  • Stay active & healthy: Benefit from a company-sponsored health membership.
  • Elevate your mobility: From car and bike leasing offers to a subsidised Deutschland-Ticket – your way is our way.
  • Think ahead: With our company pension scheme and a great insurance package we take care of your future.
  • This is by far not all… We are looking forward to speaking with you about further benefits during the hiring process.

Do you have questions?
For further information please contact Agneta Lierl, EDT_Talent_Acquisition@eon.com.

What you need to know:
Contract type: Permanent

Working time: Full time

Company: E.ON Digital Technology GmbH

Location: Essen, Hannover, München, Berlin, Würzburg, Hamburg, Frankfurt am Main

Function area: IT/Digital; Engineering

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Site Reliability Engineer

Senior Security Engineer (m/w/d)

Rocken®

Удалённоsenior

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Описание вакансии

Steuerverwaltungen brauchen clevere Software – und dahinter stehen clevere Köpfe. Unser Rocken Partner entwickelt die führende Business Lösung für kantonale und kommunale Steuerverwaltungen. Die Anwendung deckt den kompletten Verwaltungsprozess ab: vom Steuerregister über Veranlagungen und Fakturierung bis zum Inkasso und zur Verlustscheinbewirtschaftung. Derzeit entsteht eine neue Software-Generation – ein spannendes Projekt, das technisches Know-how und Innovationskraft vereint. Die Arbeitsweise ist geprägt von überlegter Fokussierung, lebendigem Austausch zwischen Teams und intellektueller Courage. Elegante Lösungen entstehen durch Wissen, Geist und Teamenergie. Bereit, an einem Produkt zu arbeiten, das echten Impact hat? Unser Rocken Partner sucht Menschen, die sich für eine gemeinsame Idee begeistern und die digitale Zukunft der Steuerverwaltung mitgestalten möchten.

Verantwortung

  • Du analysierst Schwachstellen und setzt passende Sicherheitslösungen um.
  • Du arbeitest an Themen wie Zugriff, Netzwerk, Pentesting und Monitoring.
  • Du entwickelst die Sicherheitsarchitektur weiter und beachtest ISO 27001.
  • Du automatisierst in Windows/Linux und unterstützt Kubernetes-Setups.

Qualifikationen

  • Du hast eine IT-Ausbildung und Erfahrung als System Engineer mit Security-Fokus.
  • Du denkst vernetzt, erkennst Risiken und arbeitest agil mit modernen Tools.
  • Du kennst Azure, VMware und gängige Security-Lösungen.
  • Du brennst für IT-Security und entwickelst im Team nachhaltige Lösungen.

Benefits

  • Interessante und abwechslungsreiche Tätigkeiten/Projekte
  • Attraktive Weiterbildungs- und Entwicklungsmöglichkeiten
  • Flexible Arbeitszeitgestaltung
  • Homeoffice
  • Offene Unternehmenskultur
  • Beteiligung oder Übernahme ÖV-Abonnements
  • Beteiligung oder Übernahme Parkplatz
  • Attraktive Mitarbeiterrabatte
  • Kostenlose Früchte und Getränke

ROCKEN Jobs
https://rocken.jobs

Profil Erstellen
https://rocken.jobs/application/profil\-erstellen/

  • new

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Site Reliability Engineer

Microsoft Cloud & System Engineer (m/w/d)

Rocken®

Удалённо

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Описание вакансии

Unser Rocken® Partner ist spezialisiert auf IT-Security, Cloud Lösungen, sowie IT-Outsourcing und Support. Sie setzen auf innovative Services und Dienstleistungen, bewegen und orientieren sich am Puls der Technik. Daraus ergeben sich für unsere Kunden viele Vorteile gegenüber den traditionellen IT-Lösungen, die weniger flexibel und selten skalierbar sind.

Verantwortung

  • Sicherstellung einer stabilen IT-Infrastruktur und hohen Systemverfügbarkeit
  • Betreuung und Weiterentwicklung von Microsoft-Umgebungen im Kundenumfeld
  • Planung und Umsetzung von Infrastruktur-, Rollout- und Migrationsprojekten
  • Analyse und Behebung technischer Störungen im 1st- und 2nd-Level-Support
  • Direkter Kundensupport, technische Beratung und Betreuung vor Ort

Qualifikationen

  • Microsoft 365, Azure, Entra ID und Microsoft Intune
  • Kenntnisse in Client-/Server-Systemen, Virtualisierung, Monitoring und Backup
  • Erfahrung im 1st-/2nd-Level-Support und technischen Troubleshooting
  • Kenntnisse in Infrastrukturplanung, System-Rollouts und Migrationen
  • Sehr gute Deutschkenntnisse sowie gute Englischkenntnisse; weitere Sprachen von Vorteil

Benefits

  • Flexible Arbeitszeitgestaltung
  • Homeoffice
  • Zahlreiche Mitarbeiterevents
  • Beteiligung oder Übernahme Parkplatz
  • Kostenlose Früchte und Getränke
  • Attraktive Weiterbildungs- und Entwicklungsmöglichkeiten

ROCKEN Jobs
https://rocken.jobs

Profil Erstellen
https://rocken.jobs/application/profil\-erstellen/

  • new

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Staff Storage Platform Engineer (AI Storage) - Radian ArcSubmer

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Staff Storage Platform Engineer (AI Storage) - Radian Arc — Submer | mentors.coach