Enterprise AI Systems Engineer

Posted 2 Days Ago
Be an Early Applicant
4 Locations
In-Office
165K-206K Annually
Senior level
Other
The Role
Owns enterprise AI platforms, including tenant administration, LLM gateways, MCP integrations, agentic workflows, cloud AI workloads, security, governance, cost monitoring, and adoption. Builds integrations and internal tooling primarily in Python and TypeScript across AWS and GCP. Partners with cybersecurity, AI governance, finance, and executives to enforce policies, operate reliable systems, and report on usage, performance, and spend.
Summary Generated by Built In

THE COMPANY:

Juul Labs's mission is to transition the world’s billion adult smokers away from combustible cigarettes, eliminate their use, and combat underage usage of our products. We have the opportunity to address one of the world’s most intractable challenges through a commitment to exceptional quality, research, design, and innovation. Backed by leading technology investors, we are committed to the same excellence when it comes to hiring great talent.

We are a diverse team that is united by this common purpose and we are hiring the world’s best engineers, scientists, designers, product managers, operations experts, and customer service and business professionals. If the opportunity to build your career is compelling, read on for more details.

ROLE AND RESPONSIBILITIES: 

  • You own these platforms end to end. What you build gets used across the whole company, and you decide how AI runs here rather than inheriting someone else's design.
  • Administer our enterprise Claude, Gemini, OpenRouter, Cursor and NotebookLM tenants. User provisioning, groups and roles, workspace configuration, and tenant security settings.
  • Build and maintain the content that makes those platforms useful: skills, prompts, projects, connectors, and the documentation behind them. Drive adoption across 250 users and growing.
  • Track consumption and spend across all three platforms. Report on usage, find idle seats, and support the business-unit chargeback model.
  • Keep the platforms running. Availability monitoring, feature rollouts, user issue triage, and escalation ownership when something breaks.
  • Build and operate the MCP servers and gateways that connect these platforms to internal systems, with least-privilege access and full audit logging.
  • Run the LLM gateway that centralizes routing, authentication, rate limiting, logging, and policy enforcement across model providers.
  • Choose the right model for each workload, commercial or open-weight, based on cost, latency, capability, and how sensitive the data is.
  • Build agentic workflows and automations against internal APIs and tools, with the evaluation and guardrails to keep them predictable.
  • Architect and run AI workloads on AWS and GCP: compute, networking, IAM, secrets management, private connectivity, Bedrock, and Vertex AI.
  • Own the code in GitHub and write most of it yourself, mostly Python and TypeScript. Branch protection, access control, secret scanning, and Actions pipelines.
  • Instrument the stack for cost, performance, and security telemetry, and build the reporting that leadership and finance rely on.
  • Enforce data handling, retention, and access policy alongside Cybersecurity and AI Governance, and write the runbooks and standards behind it.
  • Perform related duties as assigned, within your scope of practice 

PERSONAL AND PROFESSIONAL QUALIFICATIONS: 

  • 5+ years in software, cloud, or platform engineering, including recent hands-on work building and running LLM-based systems.
  • Experience administering an enterprise SaaS or AI tenant at scale: access management, configuration, cost control, and adoption.
  • Working knowledge of both commercial and open-weight LLMs, including prompt engineering, evaluation, retrieval, and agentic patterns.
  • Hands-on with Model Context Protocol (MCP), MCP gateways, or LLM gateways. Comparable API integration and middleware experience counts.
  • AWS and GCP architecture, including IAM, networking, secrets management, and managed AI services.
  • GitHub and standard engineering discipline: version control, code review, testing, CI/CD, and infrastructure as code.
  • Strong Python and/or JavaScript/TypeScript for building integrations, automations, and internal tooling.
  • Security and data governance fundamentals applied to AI work: least privilege, data classification, DLP, and auditability.
  • Able to explain technical work to executives, finance, and people who do not work in technology.
  • Nice to have: Vertex AI or Amazon Bedrock, self-hosted open-weight model deployment, vector databases and RAG pipelines, Splunk or another SIEM, and cloud cost management.

EDUCATION: 

  • Preferred, bachelor degree in applicable field or relevant work experience

JUUL LABS PERKS & BENEFITS:

  • A place to grow your career. We’ll help you set big goals - and exceed them
  • People. Work with talented, committed and supportive teammates
  • Equity and performance bonuses. Every employee is a stakeholder in our success
  • Cell phone subsidy, commuter benefits and discounts on JUUL products
  • Excellent medical, dental and vision, disability, and life insurance, plus family support, wellness, legal, and employee assistance program benefits
  • 401(k) plan with company matching
  • Plus biannual discretionary performance bonuses
Juul Labs is proud to be an equal opportunity employer and is committed to creating a diverse and inclusive work environment for all employees and job applicants, without regard to race, color, religion, sex, sexual orientation, age, gender identity or gender expression, national origin, disability or veteran status. We will consider for employment qualified applicants with arrest and conviction records, pursuant to the San Francisco Fair Chance Ordinance. Juul Labs also complies with the employment eligibility verification requirements of the Immigration and Nationality Act. All applicants must have authorization to work for Juul Labs in the US.

SALARY RANGES:
Salary varies by role, level and location, and is dependent on the cost of labor in a given
geographic region among other factors. These ranges may be modified at any time.
LOCATIONS:
Tier 1 Locations: Greater New York City, and San Francisco Bay Area
Tier 2 Locations: Greater Boston, Washington DC Metropolitan Area, Seattle/Tacoma,
Greater Sacramento, Southern California (Los Angeles/OC/San Diego, Riverside and Imperial counties)
Tier 3 Locations: Rest of New England, NY Capital District, Rest of New Jersey, Greater
Philadelphia, Pittsburgh, Delaware, Rest of Maryland, Rest of Virginia, North Carolina,
Atlanta, Miami-Fort Lauderdale-WPB, Chicagoland, Dallas, Houston, Austin,
Minneapolis/St. Paul, Colorado, Phoenix, Las Vegas, Reno, Carson City NV., Portland Ore./Vancouver
Wash., Rest of California, Hawaii
Tier 4 Locations: Rest of US including Alaska and Puerto Rico

Tier 1 Range:
$165,000$206,000 USD
Tier 2 Range:
$150,000$187,000 USD
Tier 3 Range:
$141,000$176,000 USD
Tier 4 Range:
$126,000$157,000 USD

Skills Required

  • 5+ years of experience in software, cloud, or platform engineering, including recent hands-on experience building and operating LLM-based systems
  • Experience administering enterprise SaaS or AI tenants at scale, including access management, configuration, cost control, and adoption
  • Working knowledge of commercial and open-weight LLMs, prompt engineering, evaluation, retrieval, and agentic patterns
  • Hands-on experience with Model Context Protocol, MCP gateways, LLM gateways, or comparable API integration and middleware
  • Experience with AWS and GCP architecture, including IAM, networking, secrets management, and managed AI services
  • Experience with GitHub, version control, code review, testing, CI/CD, and infrastructure as code
  • Strong Python and/or JavaScript/TypeScript skills for integrations, automations, and internal tooling
  • Knowledge of AI security and data governance fundamentals, including least privilege, data classification, DLP, and auditability
  • Ability to explain technical work to executives, finance teams, and nontechnical stakeholders
  • Bachelor's degree in an applicable field or relevant work experience
  • Experience with Vertex AI or Amazon Bedrock, self-hosted open-weight model deployment, vector databases, RAG pipelines, Splunk or another SIEM, and cloud cost management
Am I A Good Fit?
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The Company
HQ: Washington, DC
1,612 Employees
Year Founded: 2007

What We Do

Juul Labs is a thriving team of scientists, engineers, designers and professionals who are committed to offering adult smokers alternatives to combustible cigarettes, while combating underage use of our products. JUUL products are designed to transition adult smokers from combustible cigarettes by providing a competitive nicotine experience.

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