Staff Agentic AI / Data Engineer

Advanced Micro Devices

Indiana (PA)

On-site

USD 150,000 - 190,000

Full time

4 days ago
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Job summary

Advanced Micro Devices (AMD) is seeking an Agentic Data Engineer to build production-grade agentic AI systems on AMD Instinct GPU infrastructure. You will design data foundations, memory stores, and tools that enable deployed agents to reason, act, and learn from live deployments.

You will collaborate with customer-facing engineers, develop a reusable skills library, and create evaluation and safety pipelines to ensure reliable, secure AI experiences.

Qualifications

  • Must have strong software engineering experience at scale with data pipelines and storage systems.
  • Hands-on experience building production-grade LLM-powered and agentic applications.
  • Depth in memory/context storage paradigms (vector/graph/hybrid) with opinions on use-cases.
  • Experience designing evaluation frameworks for non-deterministic systems.
  • Strong Python skills; proficient with modern data stack tooling and containerized deployment on Kubernetes.
  • Familiarity with GPU inference serving (vLLM/SGLang) and ROCm/AMD Instinct is a plus.
  • Security-conscious engineering practices when handling untrusted content in model contexts.
  • Open-source contributions in AI/data infra are a plus.

Responsibilities

  • Build production agentic AI systems on AMD Instinct GPU infrastructure: orchestration, tool calling, skills frameworks, and streaming inference integration.
  • Design and operate memory and context data layer for agentic apps: vector/graph/relational stores, embeddings, retrieval, and access control policies.
  • Build Applied AI team engagement memory and fleet data pipelines: ingest telemetry, incident histories, and field knowledge.
  • Develop and maintain the skills library: versioned, tested encodings with gates before use.
  • Create evaluation infrastructure: regression suites, LLM-as-judge pipelines, behavioral tests, production monitoring.
  • Harden agentic systems against real-world failure modes: prompt injection, data poisoning, and tool-misuse paths.
  • Create reference architectures and open artifacts for AMD agentic workloads; contribute upstream to open-source ecosystems.
  • Collaborate with customer-facing engineers on live engagements; deployments into customer environments.

Skills

Production data engineering
LLM-powered apps
Agent frameworks
Context engineering
Tool calling
Multi-step workflows
Memory/context storage
Python
Kubernetes
GPU inference
Security-conscious engineering
Open-source contributions

Education

Bachelor's or Master's in CS/CE/Data Eng

Tools

vLLM
SGLang
Kubernetes
ROCm
AMD Instinct

Job description

ADVANCE YOUR CAREER. ADVANCE THE WORLD.

At AMD, we believetechnology has the power to solve the world's most important challenges. From advancing healthcare and scientific discovery to powering AI and the technologies people rely on every day, innovation at AMDis shapingthefuture.

Whetheryou’redesigning next-gen processors, enabling AI breakthroughs, orbringing leading edge products to market, every role at AMD contributes to something bigger— technologythat moves the world forward.Join us and, together, we’ll advance your career.

THE TEAM:

AMD's Data Center GPU organization is transforming the industry with our AI based Graphic Processors. Our primary objective is to design exceptional products that drive the evolution of computing experiences, serving as the cornerstone for enterprise Data Centers, (AI) Artificial Intelligence, HPC and Embedded systems.If this resonates with you, come and joining our Data Center GPU organization where we are building amazing AI powered products with amazing people.

THE ROLE:

AMD's Applied AI team works with the world's most demanding AI operators - frontier labs, NeoCloud providers, and AI-native companies - to make AMD Instinct GPU infrastructure the easiest place to build and run AI. As an Agentic Data Engineer, you will build the data and agent systems that sit at the heart of this mission: production agentic AI applications running on AMD clusters, the data pipelines and memory/context databases that give those agents durable knowledge, and the skills frameworks and evaluation infrastructure that make agent behavior reliable, measurable, and safe.

Your work spans two surfaces. Externally, you build agentic systems and their data foundations on customer AMD deployments - the reference implementations customers adopt when they move from inference to agents. Internally, you build the Applied AI team's own intelligence layer: engagement memory databases, fleet and telemetry data pipelines, and agent-executable skills libraries that encode deployment knowledge so every customer engagement makes the next one faster.

This is a production engineering role. The systems you build run live, get depended on, and are held to production standards for quality, provenance, and security.

THE PERSON:

You are equal parts data engineer and applied AI engineer. You think about agents as data systems: what context they retrieve, what memory they accumulate, what tools they invoke, and how you would prove they behave correctly. You have shipped pipelines that other teams depend on and LLM applications that real users hit, and you know the difference between a demo agent and one that survives production. You hold strong opinions about context engineering, memory store design, and evaluation - and you can defend them with data.

KEY RESPONSIBILITIES:
  • Build production agentic AI systems on AMD Instinct GPU infrastructure: agent orchestration, tool/function calling (including MCP-based integrations), skills frameworks, and streaming inference integration against ROCm-based serving stacks (vLLM, SGLang)
  • Design and operate the memory and context data layer for agentic applications: vector, graph, and relational stores, embedding pipelines, retrieval and context-engineering strategies, and the freshness, provenance, and access-control policies that govern them
  • Build the Applied AI team's engagement memory and fleet data infrastructure: pipelines that ingest deployment telemetry, incident histories, and field knowledge into structured, queryable, agent-consumable form
  • Develop and maintain the skills library: reusable, versioned, agent-executable encodings of deployment and operational expertise, with the testing and review gates required before agents or engineers rely on them
  • Build evaluation infrastructure for agentic systems: regression suites, LLM-as-judge pipelines, behavioral test harnesses, and production quality monitoring
  • Harden agentic systems against real-world failure modes, including prompt injection through retrieved context and memory stores, data poisoning, and tool-misuse paths
  • Create the reference architectures and open artifacts that make AMD the credible platform for agentic workloads, contributing upstream to the open-source agent, serving, and data ecosystem
  • Partner with customer-facing engineers on live engagements: your systems deploy into customer environments, and you support their production behavior
PREFERRED EXPERIENCE:
  • Deep software engineering experience with significant production data engineering: pipelines, storage systems, and data quality at scale (level flexible for exceptional candidates)
  • Hands-on experience building LLM-powered and agentic applications in production: agent frameworks and orchestration, RAG and context engineering, tool calling, and multi-step workflows
  • Depth in at least one memory/context storage paradigm - vector databases, graph databases, or hybrid retrieval architectures - and informed opinions about when each is wrong
  • Experience designing evaluation frameworks for non-deterministic systems
  • Strong Python; working fluency with modern data stack tooling (orchestration, streaming, warehouse/lakehouse) and containerized deployment on Kubernetes
  • Familiarity with GPU inference serving (vLLM, SGLang, or comparable) and the performance characteristics of LLM workloads; ROCm/AMD Instinct experience a strong plus
  • Security-conscious engineering instincts, particularly around untrusted content flowing into model context
  • Open-source contribution history in the AI/ML or data infrastructure ecosystem is a plus
PREFERRED ACADEMIC CREDENTIALS:
  • Bachelor's or Master's degree in Computer Science, Computer Engineering, Data Engineering, or equivalent practical experience

This role is not eligible for visa sponsorship.

Benefits offered are described: AMD benefits at a glance.

AMD and its subsidiaries are equal opportunity, inclusive employers and will consider all applicants without regard to age, ancestry, color, marital status, medical condition, mental or physical disability, national origin, race, religion, political and/or third-party affiliation, sex, pregnancy, sexual orientation, gender identity, military or veteran status, or any other characteristic protected by law. We encourage applications from all qualified candidates and will accommodate applicants’ needs under the respective laws throughout all stages of the recruitment and selection process.

AMD may use Artificial Intelligence to help screen, assess or select applicants for this position. AMD's "Responsible AI Policy" is available here.

This posting is for an existing vacancy.

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