Rackspace Technology

Forward Deployed Engineer IV - US

Rackspace Technology$132K — $193K *
US-AnywhereRemote in United States
Enterprise Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree in computer science, engineering, or related technical discipline required; additional experience may substitute for the degree.
  • Must be Palantir certified.
  • 6+ years in software engineering, data engineering, or AI/ML delivery; at least 4+ years 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 in Python and familiarity with Node.js/Go, React/Vue, and SQL/NoSQL databases.
  • Experience integrating with various enterprise systems such as ERP and data lakes.
  • Strong DevOps skills including Docker, Kubernetes, CI/CD, and cloud-native deployment patterns.

Responsibilities

  • Diagnose and approach critical business challenges by mapping data landscapes and co-creating AI solutions on-site.
  • Lead design and delivery of AI workflows, RAG pipelines, and real-time applications from concept to deployment.
  • Rapidly prototype and conduct proof of concepts (POCs) to demonstrate business value in a short timeline.
  • Oversee project lifecycle including scoping, architecture, construction, deployment, and optimization post-launch.
  • Architect enterprise-scale AI applications integrating with existing enterprise systems and cloud infrastructure.
  • Build scalable data pipelines for structured and unstructured data using modern technologies.
  • Champion observability practices to ensure trustworthy AI outputs and ongoing system health.

Benefits

  • Develop skills through mentor-driven opportunities and hands-on experience with cutting-edge technologies.
  • Work in a hybrid environment with flexibility for remote work for those outside of San Antonio, TX.
  • Engage directly with enterprise-level clients to solve real-world business challenges in exciting, tech-forward industries.
Full Job Description
Job Summary: As a Forward Deployed Engineer FDE) at Rackspace Technology, you will be embedded directly with our most strategic enterprise customers to architect, build, and deploy high-impact AI solutions. This role combines deep technical engineering with business acumen, customer empathy, and end-to-end solution ownership. You become the technical bridge between Rackspace's AI platform capabilities and the customer's most pressing business challenges. You will own the full solution lifecycle from problem discovery and rapid prototyping through production deployment and continuous optimization while feeding field insights back to our product and platform engineering teams.

This role is ideal for someone who thrives at the intersection of engineering, strategy, and customer engagement and wants the autonomy and impact typically found at an AI startup, backed by the scale and resources of a global technology company.

Work Location/Travel:
  • If located in San Antonio, TX you'll work a hybrid schedule with 2 days in our office, and three days remotely.
  • If located outside of San Antonio, TX you may work 100% remotely.
  • Willingness to travel up to 25% for on-site customer engagements.


Key Responsibilities:
  • 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.


Required Qualifications:
  • Bachelor's degree in computer science, engineering, or related technical discipline required. Additional experience may substitute for the degree.
  • Must be Palantir certified.
  • 6+ years in software engineering, data engineering, or AI/ML delivery; at least 4+ years 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.
  • Experience with Palantir Foundry, AIP, ontology modeling, Uniphore BAIC, or similar Enterprise AI development platforms.
  • Knowledge of SLM fine-tuning, model distillation, RLHF, and AI evaluation frameworks.
  • Experience building agentic AI solutions: multi-agent systems, tool use, and autonomous workflow orchestration.
  • Familiarity with GPU infrastructure (NVIDIA H100/B200, InfiniBand) and private cloud platforms (OpenStack, VMware).
  • Prior experience in technology consulting, AI startups, or Forward Deployed / Solutions Engineering roles.
  • Domain expertise in financial services, healthcare, supply chain, defense, energy, or manufacturing.
  • Experience with knowledge graphs, semantic modeling, and ontology-driven data management.
Our compensation reflects the cost of labor across several geographic markets. The compensation range for this position ranges from $132,149.00/year in our lowest geographic market up to 193,856.30 USD/year in our highest geographic market. Pay is based on a number of factors including market location and may vary depending on job-related knowledge, skills, and experience. Your recruiter can share more about the specific salary range for your preferred location during the hiring process. The compensation package may also include incentive compensation opportunities in the form of annual bonus or incentives, equity awards and an Employee Stock Purchase Plan (ESPP). Learn more about benefits at Rackspace.

About Rackspace Technology

Rackspace Technology is a leading end-to-end multicloud technology services company. We can design, build and operate our customers’ cloud environments across all major technology platforms, irrespective of technology stack or deployment model. We partner with our customers at every stage of their cloud journey, enabling them to modernize applications, build new products and adopt innovative technologies.
Learn more about Rackspace Technology
Size
6,000 employees
Market Cap
$563 million
Industry
Net Income
-$245.8 million
Founded
1998
5 Year Trend
+7.7%
Revenue
$2.7 billion
NASDAQ

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