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Salary
$18k – $44k per year (Estimated)
Location
Remote (India)
Seniority
Senior · 9+ years exp
Employment
Full-Time
Overview
Company
Impact
Profile match
Rackspace Technology is a major global multi-cloud solutions, managed infrastructure, and enterprise AI engineering provider headquartered in San Antonio, Texas, USA. Founded in 1998 by Richard Yoo, Pat Condon, and Dirk Elmendorf, the company operates on a B2B managed cloud services, private/public cloud migration, enterprise software integration, and managed infrastructure subscription model led by CEO Amar Maletira.

About the opportunity

At Rackspace Technology we deliver outcome-based cloud solutions that help customers modernise applications, launch new products, and run complex cloud environments. RackAI is our strategic platform for bringing secure, scalable, cloud-native AI capabilities to customers and internal teams alike.

We're looking for an expert Software Developer IV to join the PVC Product Software Engineering team and help design and evolve the core of RackAI. You'll pair deep Go and Kubernetes expertise with genuine architectural leadership - and you'll help set the standard for how a modern engineering team builds software in the age of AI. It's a hands-on senior role: strategic enough to shape direction, close enough to the code to lead by example.

Put simply: we build AI, and we build with AI. If you want to work at the intersection of cloud-native platform engineering and applied AI - and help define an AI-first engineering culture - this is the seat.

Why RackAI

You'll help shape the future of AI-powered products at Rackspace Technology - building with modern cloud-native technology, solving hard problems at scale, and setting the standard for how engineering teams work in an AI-first world.

What you'll do

Architect and build the RackAI platform

  • Design and develop highly scalable backend services in Go (Golang).
  • Build Kubernetes-native applications - operators, controllers, and platform services - using controller-runtime and kubebuilder.
  • Define and evolve the RackAI platform architecture for growth, reliability, security, and operational excellence.
  • Develop the APIs, automation frameworks, and platform capabilities that power AI-enabled products.
  • Champion cloud-native best practices: observability, resiliency, and operational readiness.

Lead an AI-first engineering culture

  • Make AI-assisted engineering the default way of working - champion an AI-driven, AI-first approach across the team.
  • Embed AI development tooling - Claude Code, Kiro, Codex, or GitHub Copilot - across the lifecycle, from design and coding through testing, review, and documentation.
  • Set the standards and guardrails for responsible, effective use of AI coding assistants - code quality, security, licensing, and human-in-the-loop review.
  • Turn AI augmentation into measurable gains in velocity and quality through prompt engineering and agentic workflows.
  • Coach engineers to get real leverage from AI tooling, and continually assess what to adopt next.

Engineer the platform and infrastructure

  • Design and optimise Kubernetes deployments across multiple environments.
  • Automate provisioning, deployment, scaling, and lifecycle management.
  • Partner with Platform Engineering to raise developer productivity and platform reliability.
  • Ensure solutions meet security, compliance, and operational requirements.

Lead and mentor

  • Provide technical leadership across multiple engineering teams.
  • Lead architectural reviews and design discussions, and set coding standards and patterns.
  • Mentor Software Developers I-III and grow engineering capability across the group.
  • Evaluate emerging technologies and recommend strategic investments.

Collaborate across the organisation

  • Work closely with Product, Architecture, Data Science, SRE, and Security.
  • Translate business needs into scalable technical solutions.
  • Communicate architectural decisions and technical strategy to stakeholders.
  • Contribute to roadmap planning and long-term platform evolution.

What you'll bring

Core software engineering

  • Expert-level Go (Golang) development.
  • Deep Kubernetes expertise - architecture, operations, and application development.
  • Proven experience with distributed systems and microservices architectures.
  • Strong command of RESTful APIs, event-driven systems, and service-oriented architecture.
  • Hands-on with container technologies such as Docker and OCI-compliant runtimes.
  • Solid grounding in software design patterns, CI/CD, DevOps, Git-based workflows, and secure coding practices.

Experience

  • Nine or more years in software development, including five or more years writing production Go.
  • Demonstrable experience building Kubernetes operators or controllers with controller-runtime or kubebuilder.
  • A track record of delivering production-grade cloud-native applications.
  • Experience leading complex technical projects end to end, and mentoring engineers to a higher standard.

AI-assisted development

  • Hands-on experience with AI coding assistants such as Claude Code, Kiro, Codex, and GitHub Copilot, integrated effectively into day-to-day engineering.
  • A genuine commitment to working within - and helping to shape - an AI-first development culture.

AI and machine learning

  • Practical understanding of modern Generative AI and Large Language Models (LLMs).
  • Familiarity with open-source foundation models such as Llama, Mistral, Gemma, Qwen, or DeepSeek.
  • Understanding of AI inference concepts, including model serving, latency, throughput, batching, performance improvements, optimizations, benchmarking of model inference?.
  • Knowledge of model fine-tuning techniques, including supervised fine-tuning (SFT), LoRA, and parameter-efficient fine-tuning (PEFT).
  • Understanding of Retrieval-Augmented Generation (RAG), vector databases, embeddings, and semantic search.
  • Experience integrating AI models into production applications using APIs or self-hosted inference platforms.

AI platform and infrastructure

  • Experience with containerised AI workloads on Docker and Kubernetes.
  • Familiarity with AI serving frameworks such as vLLM, Triton Inference Server, TensorRT-LLM, or similar technologies.
  • Understanding of GPU-accelerated computing and how AI workloads are deployed on modern GPU infrastructure.
  • Experience deploying scalable AI applications in cloud or private cloud environments.

Nice to have

  • Experience building AI/ML platforms or AI-enabled enterprise products.
  • Advanced work with CRDs and operator patterns.
  • Cloud platforms - AWS preferred; Azure or Google Cloud also welcome.
  • Service mesh technologies and platform-engineering concepts.
  • Observability stacks such as OpenTelemetry, Prometheus, Grafana, or similar.
  • Contributions to open-source projects.

About Rackspace Technology

We are the multicloud solutions experts. We combine our expertise with the world’s leading technologies - across applications, data and security - to deliver end-to-end solutions. We have a proven record of advising customers based on their business challenges, designing solutions that scale, building and managing those solutions, and optimizing returns into the future. Named a best place to work, year after year according to Fortune, Forbes and Glassdoor, we attract and develop world-class talent. Join us on our mission to embrace technology, empower customers and deliver the future.

More on Rackspace Technology

Though we’re all different, Rackers thrive through our connection to a central goal: to be a valued member of a winning team on an inspiring mission. We bring our whole selves to work every day. And we embrace the notion that unique perspectives fuel innovation and enable us to best serve our customers and communities around the globe. We welcome you to apply today and want you to know that we are committed to offering equal employment opportunity without regard to age, color, disability, gender reassignment or identity or expression, genetic information, marital or civil partner status, pregnancy or maternity status, military or veteran status, nationality, ethnic or national origin, race, religion or belief, sexual orientation, or any legally protected characteristic. If you have a disability or special need that requires accommodation, please let us know.

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