
5001 - 10000 employés
Fondée en 1998
🏢 Entreprise
🤖 Intelligence artificielle
🔐 Sécurité
Enterprise • Artificial Intelligence • Security
Rackspace Technology est un fournisseur mondial de services cloud managés qui conçoit, construit, migre et exploite des environnements de cloud multiple, hybride et privé pour les entreprises. Il offre des services de conseil, professionnels et managés à travers l'infrastructure cloud, la modernisation des applications, les plateformes de données, l'IA/ML (Foundation de l'IA/FAIR), et la cybersécurité, ainsi que l'hébergement managé, la colocation et les intégrations de plateformes avec les principaux hyperscalers. Rackspace dessert des industries réglementées et essentielles en se concentrant sur la sécurité, la conformité, l'optimisation des coûts et la fiabilité opérationnelle.
🕒 il y a 1 mois
🗣️🇺🇸🇬🇧 Anglais requis
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5001 - 10000 employés
Fondée en 1998
🏢 Entreprise
🤖 Intelligence artificielle
🔐 Sécurité
Enterprise • Artificial Intelligence • Security
Rackspace Technology est un fournisseur mondial de services cloud managés qui conçoit, construit, migre et exploite des environnements de cloud multiple, hybride et privé pour les entreprises. Il offre des services de conseil, professionnels et managés à travers l'infrastructure cloud, la modernisation des applications, les plateformes de données, l'IA/ML (Foundation de l'IA/FAIR), et la cybersécurité, ainsi que l'hébergement managé, la colocation et les intégrations de plateformes avec les principaux hyperscalers. Rackspace dessert des industries réglementées et essentielles en se concentrant sur la sécurité, la conformité, l'optimisation des coûts et la fiabilité opérationnelle.
• Embed with strategic enterprise customers to rapidly diagnose critical business challenges, map data landscapes, and co-design AI solutions on-site • Lead end-to-end solution design and delivery of agentic AI workflows, RAG pipelines, knowledge graphs, and real-time decision-making applications • Drive rapid prototyping and POCs that demonstrate tangible business value within days to weeks • Serve as the primary technical owner across the full project lifecycle: scoping, architecture, build, deployment, and post-launch optimization • Architect production-grade Enterprise AI applications on Partner Foundry Solutions or Rackspace Private Cloud and GPU infrastructure, integrating with enterprise systems (ERP, CRM, data warehouses, data lakes) • Build scalable data pipelines across structured and unstructured data using ETL/ELT, vector databases (Pinecone, Weaviate, AstraDB), and knowledge base frameworks • Develop and fine-tune LLM/SLM solutions; implement RAG architectures (LlamaIndex, Haystack) and orchestrate multi-agent workflows (LangChain, LangGraph, CrewAI) • Ship with full-stack and DevOps depth: Python, Node.js/Go , React/Vue, Docker, Kubernetes, CI/CD, and GPU cluster management • Champion observability, monitoring, and telemetry to ensure trustworthy, auditable, and versioned AI agents in production • Identify expansion opportunities by working with sales and customer success to uncover high-value use cases across new business domains • Feed structured field insights back to Platform Engineering and Product on feature gaps, emerging needs, and usability improvements • Build reusable IP through reference architectures, accelerators, frameworks, and technical best practices that scale future engagements • Mentor engineers and customer teams, driving knowledge transfer and building internal AI competencies.
• BS/MS/PhD in Computer Science, Data Science, Engineering, Mathematics, Physics, or related field • 3+ years in software engineering, data engineering, or AI/ML delivery; in customer-facing or field roles • Proven track record in building and deploying AI/ML applications in production at enterprise scale • Deep full-stack proficiency: Python (required), Node.js/Go , React/Vue, SQL/NoSQL databases • Hands-on with LLMs, prompt engineering, vector databases, data pipelines, application dashboards, RAG pipelines, and agent orchestration frameworks • Strong DevOps skills: Docker, Kubernetes, CI/CD, GPU infrastructure, cloud-native deployment patterns • Experience integrating across heterogeneous enterprise systems - ERP, data warehouses, data lakes, streaming architectures • Ability to translate ambiguous customer needs into actionable engineering plans under tight timelines • Excellent communication skills - comfortable with C-suite presentations, technical workshops, and cross-functional collaboration • Willingness to travel up to 25% for on-site customer engagements.
• Health insurance • 401(k) matching • Flexible working hours • Paid time off
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