Home › Companies › Eeho Fa Us2 Oraclecloud Com CX 1 › Senior Principal AI Agent / ML Software Engineer (OCI)
Senior Principal AI Agent / ML Software Engineer (OCI)
Eeho Fa Us2 Oraclecloud Com CX 1 · Seattle, WA, United States · Active · $96,800–$306,400 / year · Oracle Recruiting Cloud / Fusion HCM
Job facts
| Field | Value |
|---|---|
| Company | Eeho Fa Us2 Oraclecloud Com CX 1 |
| Title | Senior Principal AI Agent / ML Software Engineer (OCI) |
| Normalized title | - |
| Department / team | Product Development |
| Location | Seattle, WA, United States |
| Work model | - |
| Employment type | Full Time |
| Salary | $96,800–$306,400 / year |
| Status | active |
| ATS provider | Oracle Recruiting Cloud / Fusion HCM |
| Posted / first seen | 2026-06-05 / 2026-06-13 |
| Changed / last seen | 2026-06-20 / 2026-06-21 |
Related slices
| Page | What it contains | Open |
|---|---|---|
| Company jobs | Active postings from Eeho Fa Us2 Oraclecloud Com CX 1. | Open |
| Company breakdowns | Role, location, ATS, and work model facets for this company. | Open |
| ATS provider jobs | Active postings observed through Oracle Recruiting Cloud / Fusion HCM. | Open |
| Provider filtered search | The same provider as a filtered job collection. | Open |
| City jobs | Active postings in Seattle. | Open |
| Department jobs | Active postings in Product Development. | Open |
| Lifecycle events | Open, update, close, and reopen events for this posting. | Open |
| Original posting | Canonical source or apply URL captured from the ATS. | Open |
Linked records
| Company | Eeho Fa Us2 Oraclecloud Com CX 1 |
| Source | 75a7d46d-3d85-4632-b5a4-e0645851184d |
| ATS provider | Oracle Recruiting Cloud / Fusion HCM |
Description
Description
The Senior Principal AI Agent / ML Software Engineer is a Senior Staff-level, hands-on technical leadership role responsible for defining, building, and operating next-generation AI systems on Oracle Cloud Infrastructure (OCI). This person will set architecture and engineering direction for production-grade agentic AI platforms, autonomous workflows, scalable inference infrastructure, and enterprise AI applications used in large-scale, business-critical environments.
This role requires a proven engineer who can translate ambiguous product and platform goals into durable technical strategy, lead multi-team execution without direct authority, and remain deeply hands-on in design, code, reviews, operations, and incident follow-up. The ideal candidate combines deep distributed systems experience with practical AI-native engineering, including orchestration of LLMs, tools, APIs, memory, retrieval, evaluation, guardrails, and cloud services. The expectation is to ship, scale, and operate reliable, secure, observable, and cost-aware AI platform systems while raising the technical bar for engineers across the organization.
Responsibilities
Responsibilities
Serve as a senior technical owner for OCI AI platform capabilities, including agent execution, inference systems, model serving, AI workflow orchestration, evaluation, and observability. Design, architect, and deliver scalable agentic AI systems capable of reasoning, planning, tool use, workflow execution, multi-step task orchestration, and safe human-in-the-loop escalation. Build production-grade services for tool calling, agent memory, context management, Model Context Protocol (MCP) integration, vector retrieval, multi-agent coordination, policy enforcement, and evaluation. Lead architecture across distributed services optimized for low latency, high throughput, GPU efficiency, reliability, cost, operability, and secure multi-tenant operation. Define service boundaries, APIs, data models, state management, consistency tradeoffs, failure modes, SLIs/SLOs, rollout strategies, and operational readiness criteria for AI platform services. Drive technical strategy across infrastructure, platform, security, data, and application engineering teams, converting broad goals into executable multi-quarter plans and measurable milestones. Integrate AI agents securely and reliably with enterprise APIs, cloud services, databases, identity systems, secrets management, and external systems. Establish AgentOps and LLMOps practices for tracing, monitoring, eval suites, regression testing, experimentation, safety guardrails, prompt/tool versioning, and production reliability. Evaluate and operationalize emerging technologies in generative AI, agentic workflows, inference optimization, long-context systems, reasoning models, AI developer tooling, and agentic-first development. Drive engineering excellence through code reviews, design reviews, test strategy, deployment automation, incident analysis, documentation, and AI-assisted development practices using tools such as Codex, Claude Code, Cursor, Copilot, or similar systems. Mentor Staff and senior engineers, raise architectural standards, and influence engineering practices across OCI without requiring direct management authority. Own critical production outcomes, including reliability, performance, security posture, cost efficiency, and supportability for the systems delivered. Required Qualifications
Bachelor's, Master's, or Ph.D. in Computer Science, AI/ML, Engineering, or a related field, or equivalent practical experience. 12+ years of professional software engineering experience, including significant ownership of production systems; or equivalent experience demonstrating Senior Staff / Principal-level impact. Proven track record as a Staff, Senior Staff, Principal, or equivalent technical leader influencing architecture and execution across multiple teams. Deep experience designing, building, and operating high-scale distributed systems, cloud services, infrastructure platforms, or AI/ML platform services. Hands-on experience with production AI systems, agentic AI applications, autonomous workflows, tool-using agents, multi-step orchestration, or multi-agent systems. Practical experience with orchestration frameworks such as LangGraph, LangChain, CrewAI, AutoGen, LlamaIndex, or similar ecosystems. Deep understanding of LLM application patterns, including prompt design, structured outputs, function/tool calling, context management, RAG, memory, tool safety, and evaluation. Strong programming skills in Python and ability to contribute high-quality production code, reviews, tests, and debugging in complex distributed environments. Strong expertise with Kubernetes, Docker, cloud-native infrastructure, service-to-service communication, scalability, fault tolerance, observability, and performance analysis. Experience defining SLIs/SLOs, production readiness criteria, incident response practices, monitoring, tracing, experiments, and reliability programs for AI or distributed systems. Strong understanding of AI safety, governance, security, and operational risks for autonomous or semi-autonomous systems, including data handling, access control, auditability, and human accountability. Excellent written and verbal communication, with demonstrated ability to lead technical direction, resolve ambiguity, and influence senior stakeholders. Preferred Qualifications
Experience optimizing large-scale GPU inference or training workloads for latency, throughput, utilization, availability, and cost. Experience building or operating model serving, inference gateways, agent runtimes, workflow engines, developer platforms, or internal AI productivity platforms. Experience integrating AI systems with enterprise APIs, databases, cloud services, vector databases, embeddings, retrieval systems, identity systems, and policy enforcement layers. Experience with LLM fine-tuning, long-context systems, reasoning models, model routing, caching, batching, quantization, or emerging generative AI research. Experience building evaluation frameworks for agentic systems, including offline evals, online experiments, golden tasks, adversarial testing, regression gates, and observability dashboards. Experience using AI-assisted software development tools such as Codex, Claude Code, Cursor, Copilot, or similar systems in large-scale engineering environments. Track record of defining architectural standards, platform capabilities, or engineering practices adopted across multiple teams or organizations. Experience in enterprise, cloud infrastructure, regulated, security-sensitive, or mission-critical environments.
Qualifications
Disclaimer:
Certain U.S. based or U.S. customer or client-facing roles may be required to comply with applicable requirements, such as immunization/occupational health mandates, and/or drug testing requirements.
Range and benefit information provided in this posting are specific to the stated locations only
US: Hiring Range in USD from: $96,800 to $306,400 per annum. May be eligible for bonus, equity, and compensation deferral.
Oracle maintains broad salary ranges for its roles in order to account for variations in knowledge, skills, experience, market conditions and locations, as well as reflect Oracle's differing products, industries and lines of business.
Candidates are typically placed into the range based on the preceding factors as well as internal peer equity.
Oracle US offers a comprehensive benefits package which includes the following:
1. Medical, dental, and vision insurance, including expert medical opinion
2. Short term disability and long term disability
3. Life insurance and AD&D
4. Supplemental life insurance (Employee/Spouse/Child)
5. Health care and dependent care Flexible Spending Accounts
6. Pre-tax commuter and parking benefits
7. 401(k) Savings and Investment Plan with company match
8. Paid time off: Flexible Vacation is provided to all eligible employees assigned to a salaried (non-overtime eligible) position. Accrued Vacation is provided to all other employees eligible for vacation benefits. For employees working at least 35 hours per week, the vacation accrual rate is 13 days annually for the first three years of employment and 18 days annually for subsequent years of employment. Vacation accrual is prorated for employees working between 20 and 34 hours per week. Employees working fewer than 20 hours per week are not eligible for vacation.
9. 11 paid holidays
10. Paid sick leave: 72 hours of paid sick leave upon date of hire. Refreshes each calendar year. Unused balance will carry over each year up to a maximum cap of 112 hours.
11. Paid parental leave
12. Adoption assistance
13. Employee Stock Purchase Plan
14. Financial planning and group legal
15. Voluntary benefits including auto, homeowner and pet insurance
The role will generally accept applications for at least three calendar days from the posting date or as long as the job remains posted. Career Level - IC5
Company
Only Oracle brings together the data, infrastructure, applications, and expertise to power everything from industry innovations to life-saving care. And with AI embedded across our products and services, we help customers turn that promise into a better future for all. Discover your potential at a company leading the way in AI and cloud solutions that impact billions of lives.
True innovation starts when everyone is empowered to contribute. That’s why we’re committed to growing a workforce that promotes opportunities for all with competitive benefits that support our people with flexible medical, life insurance, and retirement options. We also encourage employees to give back to their communities through our volunteer programs.
We’re committed to including people with disabilities at all stages of the employment process. If you require accessibility assistance or accommodation for a disability at any point, let us know by emailing [email protected] or by calling 1-888-404-2494 in the United States.
Oracle is an Equal Employment Opportunity Employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, national origin, sexual orientation, gender identity, disability and protected veterans’ status, or any other characteristic protected by law. Oracle will consider for employment qualified applicants with arrest and conviction records pursuant to applicable law.
Full job record
| Job ID | 81f562c5dab74e8665fe8532b19d07814d0c04e6 |
| Org ID | 0d5c59ae-6df0-4704-b7c9-108c436dad3a |
| Source ID | 75a7d46d-3d85-4632-b5a4-e0645851184d |
| Board ID | 75a7d46d-3d85-4632-b5a4-e0645851184d |
| Provider | oracle_hcm |
| Provider Job Key | 336158 |
| Title | Senior Principal AI Agent / ML Software Engineer (OCI) |
| Normalized Title | — |
| Status | active |
| Active | yes |
| Location Text | Seattle, WA, United States |
| Department | Product Development |
| Team | — |
| Employment Type | full_time |
| Workplace Type | — |
| Remote Policy | — |
| Country | United States |
| Region | WA |
| City | Seattle |
| Salary Raw | Hiring Range in USD from: $96,800 to $306,400 per annum |
| Salary Min | 96,800 |
| Salary Max | 306,400 |
| Salary Currency | USD |
| Salary Period | year |
| Source URL | https://eeho.fa.us2.oraclecloud.com/hcmUI/CandidateExperience/en/sites/CX_1/job/336158 |
| Apply URL | https://eeho.fa.us2.oraclecloud.com/hcmUI/CandidateExperience/en/sites/CX_1/job/336158 |
| First Seen At | 2026-06-13 11:28:05Z |
| Last Seen At | 2026-06-21 12:12:44Z |
| Last Checked At | 2026-06-21 12:12:44Z |
| Last Changed At | 2026-06-20 12:19:31Z |
| Inactive At | — |
| Source Posted At | 2026-06-05 23:02:15Z |
| Source Updated At | — |
| Raw Payload Uri | s3://job-postings-prod-raw-590183727216/raw/provider=oracle_hcm/board=eeho.fa.us2.oraclecloud.com|CX_1/date=2026-06-21/2026-06-21T12-11-08-348Z-a0d011050f3a4efff9e8b7940fac7044ba8770676d24cfedfddeddf75f7ce32e.json |
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"ExternalResponsibilitiesStr": "<p style=\"-webkit-text-stroke-width: 0px; caret-color: rgb(0, 0, 0); color: rgb(0, 0, 0); font-family: Aptos, sans-serif; font-size: 10pt; font-style: normal; font-variant-caps: normal; font-weight: 400; letter-spacing: normal; line-height: normal; margin: 8pt 0cm 3pt; orphans: 2; text-align: start; text-decoration-line: none; text-decoration-style: solid; text-decoration-thickness: auto; text-indent: 0px; text-transform: none; white-space: normal; widows: 2; word-spacing: 0px;\"><span style=\"font-size: 11pt;\"><strong>Responsibilities</strong></span></p><ul style=\"list-style-type: disc;\"><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Serve as a senior technical owner for OCI AI platform capabilities, including agent execution, inference systems, model serving, AI workflow orchestration, evaluation, and observability.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Design, architect, and deliver scalable agentic AI systems capable of reasoning, planning, tool use, workflow execution, multi-step task orchestration, and safe human-in-the-loop escalation.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Build production-grade services for tool calling, agent memory, context management, Model Context Protocol (MCP) integration, vector retrieval, multi-agent coordination, policy enforcement, and evaluation.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Lead architecture across distributed services optimized for low latency, high throughput, GPU efficiency, reliability, cost, operability, and secure multi-tenant operation.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Define service boundaries, APIs, data models, state management, consistency tradeoffs, failure modes, SLIs/SLOs, rollout strategies, and operational readiness criteria for AI platform services.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Drive technical strategy across infrastructure, platform, security, data, and application engineering teams, converting broad goals into executable multi-quarter plans and measurable milestones.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Integrate AI agents securely and reliably with enterprise APIs, cloud services, databases, identity systems, secrets management, and external systems.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Establish AgentOps and LLMOps practices for tracing, monitoring, eval suites, regression testing, experimentation, safety guardrails, prompt/tool versioning, and production reliability.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Evaluate and operationalize emerging technologies in generative AI, agentic workflows, inference optimization, long-context systems, reasoning models, AI developer tooling, and agentic-first development.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Drive engineering excellence through code reviews, design reviews, test strategy, deployment automation, incident analysis, documentation, and AI-assisted development practices using tools such as Codex, Claude Code, Cursor, Copilot, or similar systems.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Mentor Staff and senior engineers, raise architectural standards, and influence engineering practices across OCI without requiring direct management authority.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Own critical production outcomes, including reliability, performance, security posture, cost efficiency, and supportability for the systems delivered.</span></li></ul><p style=\"-webkit-text-stroke-width: 0px; caret-color: rgb(0, 0, 0); color: rgb(0, 0, 0); font-family: Aptos, sans-serif; font-size: 10pt; font-style: normal; font-variant-caps: normal; font-weight: 400; letter-spacing: normal; line-height: normal; margin: 8pt 0cm 3pt; orphans: 2; text-align: start; text-decoration-line: none; text-decoration-style: solid; text-decoration-thickness: auto; text-indent: 0px; text-transform: none; white-space: normal; widows: 2; word-spacing: 0px;\"><span style=\"font-size: 11pt;\"><strong>Required Qualifications</strong></span></p><ul style=\"list-style-type: disc;\"><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Bachelor's, Master's, or Ph.D. in Computer Science, AI/ML, Engineering, or a related field, or equivalent practical experience.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">12+ years of professional software engineering experience, including significant ownership of production systems; or equivalent experience demonstrating Senior Staff / Principal-level impact.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Proven track record as a Staff, Senior Staff, Principal, or equivalent technical leader influencing architecture and execution across multiple teams.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Deep experience designing, building, and operating high-scale distributed systems, cloud services, infrastructure platforms, or AI/ML platform services.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Hands-on experience with production AI systems, agentic AI applications, autonomous workflows, tool-using agents, multi-step orchestration, or multi-agent systems.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Practical experience with orchestration frameworks such as LangGraph, LangChain, CrewAI, AutoGen, LlamaIndex, or similar ecosystems.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Deep understanding of LLM application patterns, including prompt design, structured outputs, function/tool calling, context management, RAG, memory, tool safety, and evaluation.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Strong programming skills in Python and ability to contribute high-quality production code, reviews, tests, and debugging in complex distributed environments.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Strong expertise with Kubernetes, Docker, cloud-native infrastructure, service-to-service communication, scalability, fault tolerance, observability, and performance analysis.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Experience defining SLIs/SLOs, production readiness criteria, incident response practices, monitoring, tracing, experiments, and reliability programs for AI or distributed systems.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Strong understanding of AI safety, governance, security, and operational risks for autonomous or semi-autonomous systems, including data handling, access control, auditability, and human accountability.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Excellent written and verbal communication, with demonstrated ability to lead technical direction, resolve ambiguity, and influence senior stakeholders.</span></li></ul><p style=\"-webkit-text-stroke-width: 0px; caret-color: rgb(0, 0, 0); color: rgb(0, 0, 0); font-family: Aptos, sans-serif; font-size: 10pt; font-style: normal; font-variant-caps: normal; font-weight: 400; letter-spacing: normal; line-height: normal; margin: 8pt 0cm 3pt; orphans: 2; text-align: start; text-decoration-line: none; text-decoration-style: solid; text-decoration-thickness: auto; text-indent: 0px; text-transform: none; white-space: normal; widows: 2; word-spacing: 0px;\"><span style=\"font-size: 11pt;\"><strong>Preferred Qualifications</strong></span></p><ul style=\"list-style-type: disc;\"><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Experience optimizing large-scale GPU inference or training workloads for latency, throughput, utilization, availability, and cost.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Experience building or operating model serving, inference gateways, agent runtimes, workflow engines, developer platforms, or internal AI productivity platforms.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Experience integrating AI systems with enterprise APIs, databases, cloud services, vector databases, embeddings, retrieval systems, identity systems, and policy enforcement layers.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Experience with LLM fine-tuning, long-context systems, reasoning models, model routing, caching, batching, quantization, or emerging generative AI research.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Experience building evaluation frameworks for agentic systems, including offline evals, online experiments, golden tasks, adversarial testing, regression gates, and observability dashboards.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Experience using AI-assisted software development tools such as Codex, Claude Code, Cursor, Copilot, or similar systems in large-scale engineering environments.</span></li><li style=\"line-height: normal; 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margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Mentor Staff and senior engineers, raise architectural standards, and influence engineering practices across OCI without requiring direct management authority.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Own critical production outcomes, including reliability, performance, security posture, cost efficiency, and supportability for the systems delivered.</span></li></ul><p style=\"-webkit-text-stroke-width: 0px; caret-color: rgb(0, 0, 0); color: rgb(0, 0, 0); font-family: Aptos, sans-serif; font-size: 10pt; font-style: normal; font-variant-caps: normal; font-weight: 400; letter-spacing: normal; line-height: normal; margin: 8pt 0cm 3pt; orphans: 2; text-align: start; text-decoration-line: none; text-decoration-style: solid; text-decoration-thickness: auto; text-indent: 0px; text-transform: none; white-space: normal; widows: 2; word-spacing: 0px;\"><span style=\"font-size: 11pt;\"><strong>Required Qualifications</strong></span></p><ul style=\"list-style-type: disc;\"><li style=\"line-height: normal; 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margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Hands-on experience with production AI systems, agentic AI applications, autonomous workflows, tool-using agents, multi-step orchestration, or multi-agent systems.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Practical experience with orchestration frameworks such as LangGraph, LangChain, CrewAI, AutoGen, LlamaIndex, or similar ecosystems.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Deep understanding of LLM application patterns, including prompt design, structured outputs, function/tool calling, context management, RAG, memory, tool safety, and evaluation.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Strong programming skills in Python and ability to contribute high-quality production code, reviews, tests, and debugging in complex distributed environments.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Strong expertise with Kubernetes, Docker, cloud-native infrastructure, service-to-service communication, scalability, fault tolerance, observability, and performance analysis.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Experience defining SLIs/SLOs, production readiness criteria, incident response practices, monitoring, tracing, experiments, and reliability programs for AI or distributed systems.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Strong understanding of AI safety, governance, security, and operational risks for autonomous or semi-autonomous systems, including data handling, access control, auditability, and human accountability.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Excellent written and verbal communication, with demonstrated ability to lead technical direction, resolve ambiguity, and influence senior stakeholders.</span></li></ul><p style=\"-webkit-text-stroke-width: 0px; caret-color: rgb(0, 0, 0); color: rgb(0, 0, 0); font-family: Aptos, sans-serif; font-size: 10pt; font-style: normal; font-variant-caps: normal; font-weight: 400; letter-spacing: normal; line-height: normal; margin: 8pt 0cm 3pt; orphans: 2; text-align: start; text-decoration-line: none; text-decoration-style: solid; text-decoration-thickness: auto; text-indent: 0px; text-transform: none; white-space: normal; widows: 2; word-spacing: 0px;\"><span style=\"font-size: 11pt;\"><strong>Preferred Qualifications</strong></span></p><ul style=\"list-style-type: disc;\"><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Experience optimizing large-scale GPU inference or training workloads for latency, throughput, utilization, availability, and cost.</span></li><li style=\"line-height: normal; margin-bottom: 2.4pt;\"><span style=\"font-size: 9.5pt;\">Experience building or operating model serving, inference gateways, agent runtimes, workflow engines, developer platforms, or internal AI productivity platforms.</span></li><li style=\"line-height: normal; 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