- OCI Enterprise Engineering
IC4 Principal Developer - Enterprise AI Platforms Team
Oracle is seeking an experienced and driven AI Architect / Principal Developer to join the OCI Enterprise Engineering, Enterprise AI Platforms Team This team builds, integrates, deploys, and supports enterprise-grade AI platforms used across Oracle, including employee-facing generative AI experiences, agentic AI capabilities, engineering automation platforms, and secure integrations with AI providers such as OpenAI, Anthropic, OCI Generative AI, Codex-style developer assistants, and related enterprise AI services.
OCI Enterprise Engineering provides modern enterprise services to Oracle’s internal businesses and is driving improved agility, performance, availability, and security across Oracle’s enterprise and development environments. We seek passionate, highly motivated, engineering-first individuals who can help deliver scalable AI capabilities with strong enterprise controls, with particular emphasis on Agent AI, AI-assisted software engineering, and Harness-based engineering workflows
As an IC4 AI Architect, you will design and deliver platform modules, integrations, agent frameworks, developer productivity capabilities, and operational services that make AI usable, secure, measurable, and productive for Oracle employees and engineering teams. You will work across multiple delivery tracks, rapidly evaluate emerging AI capabilities, and turn practical ideas into reliable enterprise deployments that can be adopted safely at Oracle scale.
This role is especially focused on building the next generation of enterprise AI platforms: autonomous and semi-autonomous agents, AI-powered engineering assistants, Codex-like coding workflows, Harness engineering automation, secure tool execution, model orchestration, observability, governance, and production-ready deployment patterns.
Responsibilities
Architecture and technical ownership:
Independently architect, design, and drive AI platform modules, provider integrations, APIs, agent runtimes, internal tools, and engineering automation services from concept through production release.
Agent AI platform development:
Design and implement enterprise-grade Agent AI capabilities, including tool-calling agents, multi-step reasoning workflows, task orchestration, memory and context management, human-in-the-loop controls, agent evaluation, and safe execution patterns.
Harness engineering integration:
Build and integrate AI capabilities into Harness-based engineering workflows, including CI/CD automation, deployment intelligence, release assistance, pipeline troubleshooting, change analysis, incident support, and developer productivity enhancements.
Codex and AI-assisted engineering workflows:
Evaluate, integrate, and operationalize Codex-style coding assistants and AI developer tools for Oracle engineering teams. Design secure workflows for code generation, code review assistance, test generation, documentation, refactoring, repository understanding, and engineering knowledge retrieval.
Enterprise AI deployment:
Design secure, scalable deployment patterns for generative AI platforms and services such as OpenAI, Anthropic, OCI Generative AI, Codex-like engineering agents, and related enterprise AI capabilities.
Multi-track delivery:
Work effectively across parallel initiatives, balance priorities, identify dependencies, and make sound technical decisions with limited supervision.
Rapid prototyping and evaluation:
Explore new AI features, model APIs, agentic workflows, RAG patterns, evaluation methods, engineering automation tools, and platform changes. Build prototypes that clarify enterprise value, risk, feasibility, and implementation approach.
Solution design and implementation:
Translate business, employee productivity, and engineering productivity needs into well-structured AI solutions, including backend services, orchestration flows, prompt and tool integrations, model routing, repository integrations, pipeline integrations, and operational controls.
Secure tool and system integration:
Design secure patterns for AI agents and coding assistants to interact with enterprise systems such as Git repositories, CI/CD platforms, Harness, Jira, Confluence, SharePoint, Outlook, observability tools, and internal APIs.
Security, privacy, and governance:
Embed enterprise security guardrails, identity and access controls, data protection practices, auditability, responsible AI controls, model risk management, prompt and code safety, and compliance requirements into platform architecture.
Operational excellence:
Design for reliability, observability, scalability, cost control, performance, supportability, incident response, and operational readiness across production AI services, agents, and engineering automation workflows.
Cross-functional collaboration:
Partner with product managers, security teams, platform engineers, application teams, developer experience teams, support teams, and business stakeholders to deliver AI capabilities that are practical, supportable, and aligned with Oracle standards.
Knowledge sharing and technical leadership:
Document design decisions, share learnings, mentor engineers, establish reusable patterns, and help the team stay current with fast-moving AI platform, agent, and AI-assisted engineering changes.
Qualifications
8+ years of experience in software engineering, cloud platforms, enterprise architecture, AI/ML engineering, developer platforms, DevOps engineering, or related technology roles.
Bachelor’s or Master’s degree in Computer Science, Engineering, Artificial Intelligence, Data Science, or equivalent practical experience.
Proven ability to independently own architecture and delivery of complex modules, integrations, agents, automation workflows, or services in production enterprise environments.
Hands-on experience designing and building REST APIs, microservices, backend services, workflow orchestration, platform integrations, or developer productivity systems.
Practical experience with generative AI, LLMs, prompt engineering, RAG, model APIs, embeddings, vector search, agent workflows, tool calling, or AI-assisted application development.
Experience with developer engineering workflows such as CI/CD, build pipelines, deployment automation, release management, testing automation, code review, or production support.
Strong understanding of secure enterprise deployment patterns, including authentication, authorization, network controls, secrets management, audit logging, data privacy, secure code handling, and least-privilege access.
Ability to quickly learn new AI capabilities, assess tradeoffs, and recommend practical approaches for safe adoption within a large enterprise.
Strong written and verbal communication skills, with the ability to explain complex AI, agent, platform, and engineering automation concepts to technical and non-technical stakeholders.
Experience working with globally distributed teams and Agile delivery practice
Preferred Experience
Experience deploying employee-facing AI platforms, internal productivity tools, chat assistants, enterprise knowledge systems, engineering assistants, or agentic AI products.
Experience designing or integrating Agent AI systems that use tools, enterprise APIs, repository context, knowledge retrieval, workflow orchestration, or human approval flows.
Experience with Harness or comparable engineering platforms for CI/CD, deployment automation, feature delivery, release operations, governance, and developer workflows.
Experience with Codex-style AI coding tools, AI code generation, automated test generation, code review assistance, repository analysis, or AI-assisted software delivery.
Experience integrating multiple AI providers or designing abstraction layers for model routing, policy enforcement, observability, evaluation, fallback behavior, and cost controls.
Experience with content creation, document analysis, data analysis, deep research, enterprise search, software engineering workflows, or agent-based workflows in enterprise AI products.
Experience evaluating emerging AI capabilities and converting ambiguous requirements into working designs and production-ready delivery plans.
Experience defining evaluation frameworks for AI agents, coding assistants, retrieval quality, tool execution accuracy, safety, and enterprise readiness.
Technology Skills
AI platforms and model APIs:
OpenAI, Anthropic Claude, OCI Generative AI, Azure OpenAI, Codex-style coding agents, or similar enterprise AI services.
Agent AI and orchestration:
Agent workflows, function/tool calling, multi-step task execution, planning, memory and context management, human-in-the-loop patterns, agent evaluation, guardrails, and secure tool execution.
LLM application patterns:
RAG, prompt engineering, model evaluation, safety guardrails, usage analytics, model routing, provider abstraction, grounding, retrieval evaluation, and feedback loops.
AI-assisted software engineering:
Codex-style coding assistants, code generation, test generation, code review support, repository understanding, refactoring assistance, documentation generation, and developer workflow automation.
Harness and DevOps engineering:
Harness CI/CD, deployment pipelines, release automation, build systems, automated testing, Git workflows, deployment governance, observability integration, incident response, capacity planning, and cost optimization.
Frameworks and libraries:
LangChain, LlamaIndex, Semantic Kernel, Hugging Face, PyTorch, TensorFlow, or similar AI development and orchestration frameworks.
Search and retrieval:
OpenSearch, Elasticsearch, Oracle Database vector search, pgvector, Milvus, Pinecone, FAISS, embeddings, ranking, retrieval evaluation, and enterprise knowledge grounding.
Cloud and platform engineering:
OCI, Kubernetes, Docker, Terraform, Helm, API Gateway, service mesh, object storage, IAM, Vault, networking fundamentals, and production platform operations.
Programming:
Python, Java, TypeScript, or JavaScript; experience building production services, automation, agents, platform integrations, and developer tools is strongly preferred.
Enterprise integrations:
OAuth/OIDC, SSO, REST, event-driven integration, Slack, Confluence, SharePoint, Outlook, Jira, Git repositories, CI/CD systems, Harness, observability platforms, and comparable enterprise systems.
Responsible AI and governance:
Secure prompt and data handling, model risk awareness, content safety, code safety, compliance controls, evaluation records, auditability, usage monitoring, and policy enforcement.
Responsibilities
Architecture and technical ownership: Independently architect, design, and drive AI platform modules, provider integrations, APIs, services, and internal tools from concept through production release.
Enterprise AI deployment: Design secure, scalable deployment patterns for generative AI platforms and services such as OpenAI, Anthropic, OCI Generative AI, and related enterprise AI capabilities.
Multi-track delivery: Work effectively across parallel initiatives, balance priorities, identify dependencies, and make sound technical decisions with limited supervision.
Rapid prototyping and evaluation: Explore new AI features, model APIs, agentic workflows, RAG patterns, evaluation methods, and platform changes; build prototypes that clarify enterprise value, risk, and implementation approach.
Solution design and implementation: Translate business and employee productivity needs into well-structured AI solutions, including backend services, orchestration flows, prompt and tool integrations, model routing, and operational controls.
Security, privacy, and governance: Embed enterprise security guardrails, identity and access controls, data protection practices, auditability, responsible AI controls, and compliance requirements into platform architecture.
Cross-functional collaboration: Partner with product managers, security teams, platform engineers, application teams, support teams, and business stakeholders to deliver AI capabilities that are practical, supportable, and aligned with Oracle standards.
Operational excellence: Design for reliability, observability, scalability, cost control, performance, and supportability across production AI services.
Knowledge sharing: Document design decisions, share learnings, mentor engineers, and help the team stay current with fast-moving AI platform changes.
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: $99,600 to $223,400 per annum. May be eligible for bonus and equity.
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 - IC4
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