AI Engineer

Light & Wonder

Las Vegas (NV)

Hybrid

USD 100,000 - 120,000

Full time

14 days+

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Job summary

Light & Wonder is seeking an AI Engineer to build and operate the enterprise AI foundation, including agentic workflows, multi-agent systems, and MCP platform components. You will implement backend services with Python/Java/TypeScript, integrate with enterprise systems, and ensure secure, scalable production-grade AI capabilities.

You will work closely with Architecture, Security, DevOps, and business stakeholders to deliver governance-compliant AI solutions, deploying on cloud platforms like

Qualifications

  • 5+ years of professional software engineering in GenAI/AI/ML within enterprise environments.
  • Strong Python and Java/TypeScript/Node.js backend experience with enterprise integrations.
  • Hands-on GenAI/LLM app engineering: agents, tool calls, RAG, embeddings, vector search, prompts.
  • Proven GenAI solutions with agent orchestration and multi-agent systems.
  • Experience with enterprise GenAI platforms (ChatGPT/OpenAI, Claude, Copilot) and cloud AI services (AWS Bedrock, Azure Foundry).
  • Experience building MCP-style tool/connector services, MCP servers/gateways, guardrails, and multi-tenant patterns.

Responsibilities

  • Build and operate production AI services including agentic workflows and multi-agent systems.
  • Develop backend services and APIs in Python and Java/TypeScript with enterprise auth, logging, and observability.
  • Deploy and operate AI workloads on cloud platforms (AWS Bedrock, Azure Foundry) with CI/CD and containerization.
  • Evaluate emerging AI tools; run proofs of concept and create evaluation harnesses for governance processes.
  • Implement security and reliability across solutions: secrets, encryption, auditing, guardrails.
  • Collaborate with Architecture, Security, DevOps, and business stakeholders to ship compliant AI initiatives.

Skills

GenAI development
Python
TypeScript/Node.js
Java
AI tooling
Security mindset
DevOps
Cloud platforms
Communication
Docker
CI/CD
Kubernetes
Git

Tools

Docker
CI/CD
Kubernetes
Git

Job description

Corporate:

Light & Wonder’s corporate team is comprised of incredible talent that works across the enterprise, defying boundaries to provide essential services in an extraordinary manner to ensure the success of the organization and the well‑being of employees.

Position Summary
The Mission:

Support the AI transformation program and the COE’s enterprise governance by ensuring AI tools and solutions are evaluated, governed, and scaled in a structured, compliant manner.

Job Summary:

The AI Engineer builds and operates the technical foundation of LNW’s enterprise AI program. This is a hands‑on software and platform engineering role: you build, integrate, and run the AI services, integrations, and platform capabilities the rest of the program depends on. You take AI initiatives from technical evaluation through to production: standing up agentic workflows and multi‑agent systems, building backend services and APIs, integrating AI capabilities into enterprise systems, and building out the MCP platform, including its servers, gateways, guardrails, permissions, and agent workflows.

You are the engineering counterpart to the AI Governance & Delivery Analyst: the Analyst runs intake, governance, evaluation coordination, and reporting, while you own the technical build. Architecture and solution design sit with the team’s Architect: you build and operate against those designs. You conduct deep technical assessments of emerging AI tools, platforms, and agents, prove out solutions through proofs of concept, and turn approved use cases into secure, scalable, production‑ready services.

Working closely with Architecture, Security, DevOps, and business stakeholders, you ensure AI initiatives are technically sound, well engineered, properly secured, and delivering measurable business value. This is a production engineering role: you ship and operate enterprise AI services rather than only configuring them.

Essential Job Functions:
  • Build and operate production AI services and integrations: agentic workflows, multi‑agent systems, RAG pipelines, and tool and function‑calling integrations wired into enterprise systems.
  • Build out the enterprise MCP platform: MCP servers and gateways, tool and connector integrations, guardrails, permissions and access boundaries, and reusable agent components.
  • Develop backend services and APIs in Python, and Java and/or TypeScript/Node.js, with enterprise‑grade authentication, authorization, logging, monitoring, and observability.
  • Deploy and operate AI workloads on cloud AI platforms including AWS Bedrock (with AgentCore), Azure AI Foundry, and equivalent multi‑model environments, infrastructure best practices, CI/CD, and containerization practices.
  • Conduct deep technical evaluations of emerging AI tools, platforms, models, and agents, run proofs of concept, and build the evaluation harnesses and rubric‑based LLM test tooling that feed the COE’s governance and approval process.
  • Engineer security and reliability into every solution: secrets management, encryption, secure API design, audit logging, guardrails, and mitigations for LLM‑specific threats, building for resiliency, quality, and cost‑aware operation.
  • Partner with the AI Governance & Delivery Analyst and with Architecture, Security, DevOps, and business stakeholders to move initiatives from intake through to production cleanly and compliantly.
Outcomes:
  • Secure, scalable, production‑ready AI services and integrations, delivered to enterprise standards and operated reliably in production.
  • A robust, reusable MCP platform (servers, gateways, guardrails, and agent components) that lets the business build and integrate AI capabilities safely and at pace.
  • A trusted, reusable, and well‑governed AI foundation that enables innovation at pace while maintaining the operational discipline and regulatory integrity required by LNW’s enterprise governance framework.
Qualifications

These attributes are required unless otherwise specified as preferred.

Required
  • 5+ years of professional software engineering experience, with a strong recent focus on GenAI or AI/ML application development in enterprise environments.
  • Strong hands‑on software development in Python, and Java and/or TypeScript/Node.js, with a proven track record building backend services, APIs, and integrations with enterprise systems (authentication, authorization, logging, monitoring).
  • Hands‑on GenAI/LLM application engineering: agents, tool and function calling, RAG architectures, embeddings, vector search, and prompt engineering.
  • Proven experience building GenAI solutions and virtual agent orchestration: agentic workflows, multi‑agent systems, conversational AI, and AI‑assisted automation for enterprise processes.
  • Hands‑on experience with enterprise GenAI platforms and foundation models (ChatGPT/OpenAI, Claude/Anthropic, Microsoft Copilot, Google Gemini) and cloud AI services such as AWS Bedrock, Azure AI Foundry, or equivalent multi‑model environments.
  • Hands‑on experience building and integrating API and MCP‑style tool and connector services, including MCP servers and gateways, guardrails, permissions, and multi‑tenant patterns with throttling and rate limiting.
  • Solid infrastructure and DevOps fundamentals: Git‑based workflows, CI/CD, containerization (Docker), infrastructure as code, and cloud deployment patterns, with the ability to stand up and operate services in production.
  • Strong security mindset: secrets management, encryption, audit logging, and secure API design, with familiarity with LLM‑specific threats and mitigations.
  • Demonstrated ability to turn ambiguous requirements into working, well‑documented technical solutions with clear acceptance criteria and measurable outcomes.
  • Comfort building structured technical evaluation artifacts: test plans, expected behaviours, defect triage, and rubric‑based LLM evaluation.
  • Excellent collaboration and communication, with the ability to drive technical follow‑through across Security, Architecture, Engineering, and business teams.
Preferred
  • Experience with LLM orchestration frameworks (LangChain/LangGraph, LlamaIndex, Semantic Kernel) and observability or evaluation tooling (Promptfoo, Azure, or Grafana/Loki‑style stacks).
  • Experience integrating enterprise identity and access (Okta, Microsoft Entra) and implementing secure SSO and OAuth patterns for AI services.
  • Experience with Kubernetes and infrastructure as code (Terraform, CloudFormation), plus cloud networking and reverse‑proxy patterns (for example, nginx).
  • Familiarity with Responsible AI and risk‑management frameworks (NIST AI RMF, EU AI Act risk classification, model lifecycle controls).
  • Experience with output‑quality measurement, resiliency checks, and human‑in‑the‑loop review processes for GenAI/LLM systems.
  • Exposure to cost governance and FinOps practices for usage‑based AI platforms (token cost tracking, consumption attribution, budget alerts, optimization) and cost‑aware architecture.
  • Experience with enterprise governance forums (AI Steering Committee, QBRs) and building KPI and observability dashboards.
  • Regulated‑industry experience (gaming, financial services, healthcare) and awareness of the associated compliance controls.

The targeted pay range for this role is $100,000-$120,000. The total compensation package for this position may also include applicable incentive compensation, such as an annual performance bonus. Actual compensation packages are based on several factors that may include, but are not limited to skill set, depth of experience, specific work geography, as well as internal equity and alignment with market data.

Physical Requirements:

The physical demands described here are representative of those that must be met by an individual to successfully perform the essential functions of this job. Reasonable accommodation may be made to enable individuals with disabilities to perform these functions. While performing the duties of this job, the employee is regularly required to sit, stand, walk, bend, use hands, operate a computer, and possess specific vision abilities, including close and distance vision and the ability to adjust focus while working with computers and business equipment.

Location:

Austin, TX strongly preferred; Las Vegas, NV will also be considered. This is a hybrid position requiring onsite presence four days per week.

Work Conditions:

This role is performed in a collaborative, fast‑paced environment and may be based in a hybrid work setting, depending on business needs. The position requires regular partnership with cross‑functional teams and may involve occasional flexibility in working hours to support priorities across time zones. Travel is expected to be minimal, up to 5%. Work is primarily performed in an office or remote setting with standard computer and communication tools, in compliance with company safety, security, and policy requirements.

Light & Wonder and its affiliates (collectively, “L&W”) are engaged in highly regulated gaming and lottery businesses. As a result, certain L&W employees may, among other things, be required to obtain a gaming or other license(s), undergo background investigations or security checks, or meet certain standards dictated by law, regulation, or contracts. In order to ensure L&W complies with its regulatory and contractual commitments, L&W requires all its employees to meet those requirements that are necessary to fulfill their individual roles. As a prerequisite to employment with L&W (to the extent permitted by law), you shall be asked to consent to L&W conducting a due diligence/background investigation on you.

This job description should not be interpreted as all‑inclusive; it is intended to identify major responsibilities and requirements of the job. The employee in this position may be requested to perform other job‑related tasks and responsibilities than those stated above.

Light & Wonder is an Equal Opportunity Employer and does not discriminate against applicants due to race, color, sex, age, national origin, religion, sexual orientation, gender identity, status as a veteran, and basis of disability or any other federal, state or local protected class. If you’d like more information about your equal employment opportunity rights as an applicant under the law, please click here for EEOC Poster.

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