AI Infrastructure Engineer

Axon Solutions Inc
Boston, MA, United States
9 days ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Experience level
Experienced
Experience required
4 years minimum
Compensation
$154,388.0 - $247,020.0
Working hours
Regular working hours
Job source

Tech stack

JavaScript (Programming Language) Microsoft Windows Application Programming Interfaces (APIs) Artificial Intelligence Amazon Web Services Software Applications Confluence JIRA User Authentication Microsoft Azure Software Bug Management Software as a Service
+49 more
Cloud Computing System Configuration Continuous Integration Data Security DevOps Github Python (Programming Language) Key Management Machine Learning Automation of Marketing Node.Js OAuth OpenID Rapid Prototyping Process Role-Based Access Control Azure Active Directory Next.js Software Safety Runbook Salesforce.Com Software Engineering Systems Integration TypeScript Web Applications Workflow Management Systems AI Infrastructure Enterprise Data Management Data Logging Pulumi Google Cloud Enterprise Software Applications Cloud Platform System ReactJS Retrieval-Augmented Generation Large Language Models Snowflake Grafana Prompt Engineering Model Validation Backend Cloudformation Information Technology Slack Webforms Deployment Automation Bicep Terraform Serverless Computing Servicenow

Job description

We’re looking for an AI Infrastructure Engineer to help move internal AI and software prototypes from “it works” to “it is production-ready, secure, reliable, supportable, and maintainable.” This role focuses on the operational backbone of internal applications: infrastructure, CI/CD, deployment patterns, reliability, maintenance, support, and production readiness.

This is a hands-on individual contributor role that blends platform engineering, DevOps, internal tools engineering, and applied AI infrastructure. You’ll work closely with Corporate AI, IT, Enterprise Data, Security, and business teams to support applications that replace existing software, augment workflows, and improve how teams operate.

We’re open to candidates at multiple levels. This could be a strong platform or DevOps engineer ready to grow into broader ownership, or an experienced infrastructure engineer who has operated internal systems at scale.

In this role, you’ll:

  • Own maintenance, support, and operational readiness for internal AI-enabled applications and tools.
  • Help productionize prototypes built by Corporate AI, business teams, or technical partners.
  • Improve infrastructure and deployment patterns, with a focus on Vercel-hosted applications and tools deployed across Azure, AWS, and other environments.
  • Build and maintain CI/CD, infrastructure-as-code patterns, monitoring, secrets management, access controls, runbooks, and support processes.
  • Partner through testing, rollout, UAT, and long-term maintenance so internal tools remain useful, stable, secure, and dependable.

This is not an AI research role. You do not need to train models or develop novel ML techniques. You should understand how modern AI-powered applications are built, deployed, secured, monitored, and supported in an enterprise environment.

What You’ll Do Productionize Internal Tools & Prototypes

  • Turn prototypes, proof-of-concepts, and team-built tools into reliable applications for real business users.
  • Improve production readiness across inherited applications, including deployment configuration, monitoring, error handling, documentation, testing, access controls, and supportability.
  • Partner with Corporate AI engineers and business teams to move applications from prototype to pilot to production.
  • Support UAT and rollout by helping validate that applications meet business needs, are stable for daily use, and have a clear support model.
  • Identify reliability, security, scalability, and maintainability gaps before tools become business-critical.
  • Ensure internal applications are not just built, but owned, supported, and continuously improved.

Own Infrastructure, CI/CD & Platform Operations

  • Own and improve the operational model for internal applications hosted on Vercel, including deployment patterns, configuration, environment management, access controls, monitoring, and production support.
  • Support internal applications running across Azure, AWS, Google Cloud Platform, and other cloud environments, with Azure experience especially helpful.
  • Build and maintain CI/CD workflows, primarily using GitHub Actions.
  • Apply infrastructure-as-code concepts using Terraform, Bicep, Pulumi, CloudFormation, or similar tools.
  • Manage platform concerns such as secrets, environment variables, deployment automation, access control, logging, alerting, and operational documentation.
  • Partner with IT, Security, Enterprise Data, and Corporate AI to align infrastructure patterns with Axon’s security and compliance expectations.
  • Participate in shared production support and incident response for internal tools and applications.

Maintain and Improve Existing Systems

  • Own ongoing maintenance and support for internal applications, integrations, web apps, backend services, extensions, and workflow tools.
  • Fix bugs, improve reliability, manage dependency updates, address security patches, and reduce operational toil.
  • Improve observability so the team can understand application health, usage, errors, cost, and reliability.
  • Create runbooks, support documentation, checklists, and escalation paths for applications under Corporate AI ownership.
  • Reduce the burden on engineers focused on net-new work by taking ownership of systems that need upkeep and operational care.
  • Take pride in brownfield engineering: improving existing systems and making them safer, cleaner, more reliable, and easier to operate.

Establish Internal Tool Lifecycle Standards

  • Help build a repeatable lifecycle model for internal tools, from prototype intake through production readiness, support, maintenance, and retirement.
  • Create practical standards such as production readiness checklists, UAT checklists, CI/CD templates, infrastructure patterns, runbook templates, and support handoff processes.
  • Help define what it means for an internal application to be experimental, in pilot, production-ready, business-critical, or ready for deprecation.
  • Improve how the team inherits, supports, and maintains applications created by other teams or through rapid prototyping.
  • Identify opportunities to consolidate, simplify, and standardize internal applications and infrastructure over time.

Support Applied AI Systems

  • Support infrastructure and operations for AI-powered internal tools, including applications that use LLMs, AI agents, RAG workflows, automation frameworks, and enterprise integrations.
  • Understand core AI application concepts such as prompt engineering, retrieval-augmented generation, agentic workflows, model APIs, evaluations, and AI safety considerations.
  • Help ensure AI-enabled tools are deployed with appropriate safeguards around data access, secrets, logging, auditability, and responsible use.
  • Partner with Corporate AI to ensure AI-powered applications are reliable, secure, supportable, and aligned with Axon’s internal standards.

Collaborate Across Axon

  • Work closely with Corporate AI, Enterprise Data, IT, Security, and business stakeholders across Axon.
  • Communicate technical risks, tradeoffs, support concerns, and infrastructure needs clearly to technical and non-technical partners.
  • Collaborate with teams replacing existing software, augmenting workflows, or building internal tools to solve business problems.
  • Support internal users and stakeholders during rollout, support, and improvement cycles when needed.
  • Bring ownership to ambiguous problems, especially when applications have unclear support models, incomplete documentation, or evolving requirements., * Operating applications on Vercel, including configuration, deployments, environment variables, access controls, monitoring, and production support.
  • Supporting internal tools, enterprise applications, workflow automation, or business-critical internal systems.
  • Azure infrastructure, identity, networking, application hosting, and security patterns.
  • Authentication and authorization patterns such as SSO, OAuth/OIDC, Entra ID / Azure AD, RBAC, service principals, and secrets management.
  • Observability tools, logging platforms, alerting systems, uptime monitoring, incident response, and operational runbooks.
  • Maintaining applications built with Python, TypeScript, JavaScript, Node.js, React, or similar modern stacks.
  • Backend services, APIs, integrations, serverless applications, containers, or cloud-hosted web applications.
  • AI-powered internal tools, LLM applications, RAG workflows, agents, Slackbots, enterprise integrations, or automation platforms.
  • Integrating with enterprise systems such as Slack, Jira, Confluence/Quip, Microsoft 365, Salesforce, Snowflake, ServiceNow, or similar.
  • Working in regulated, security-sensitive, or compliance-heavy environments.
  • Creating engineering standards, templates, checklists, lifecycle models, or production readiness frameworks.
  • Participating in UAT, release readiness, stakeholder testing, or internal application rollout processes.
  • Mentoring or enabling other engineers through documentation, templates, examples, or operational best practices., We collect personal information from applicants to evaluate candidates for employment. You may request access, deletion, or exercise other CCPA rights at or via our Axon Privacy Web Form. For more information, please see the Your California Privacy Rights section of our Applicant and Candidate Privacy Notice.

Axon’s mission is to Protect Life and is committed to the well-being and safety of its employees as well as Axon’s impact on the environment. All Axon employees must be aware of and committed to the appropriate environmental, health, and safety regulations, policies, and procedures. Axon employees are empowered to report safety concerns as they arise and activities potentially impacting the environment.

Requirements

  • 4+ years of experience in platform engineering, DevOps, infrastructure engineering, internal tools engineering, automation engineering, software engineering, or a related technical role.
  • Strong cloud infrastructure experience with Azure, AWS, or Google Cloud Platform; Azure experience is especially helpful.
  • Experience with infrastructure-as-code concepts and tools such as Terraform, Bicep, Pulumi, CloudFormation, or similar.
  • Experience building, maintaining, or supporting CI/CD pipelines, especially with GitHub Actions.
  • Strong understanding of deployment patterns, environments, secrets management, access controls, monitoring, logging, and production support.
  • Ability to read, understand, maintain, and improve application code in Python, TypeScript, JavaScript, Node.js, or similar languages.
  • Experience supporting production or production-like systems, including bug fixes, incident response, dependency updates, documentation, and reliability improvements.
  • Familiarity with AI application concepts such as LLM APIs, prompt engineering, RAG, agents, model evaluation, AI security risks, and responsible AI practices.
  • Strong ownership mindset, including comfort taking over work others started, bringing order to ambiguity, and making systems more reliable over time.
  • Strong communication skills and ability to work with technical teams, IT partners, security stakeholders, and internal business users.
  • Comfort with brownfield engineering, maintenance, support, and operational excellence.
  • Practical, service-oriented mindset focused on whether internal tools work well for the people depending on them., The ideal candidate is a platform-minded engineer who enjoys taking useful but unfinished software and making it dependable. You may have a background as a DevOps engineer, platform engineer, infrastructure engineer, internal tools engineer, automation engineer, or software engineer with strong operational instincts.

You are not looking only for greenfield feature work. You are energized by making systems stable, maintainable, observable, secure, and easy to support. You are comfortable inheriting prototypes, understanding how they work, identifying what is missing, and building the infrastructure and operational practices needed to make them successful.

You are someone who can say, “I’ll own this,” and then bring structure to the application, deployment, support model, documentation, and long-term maintenance plan.

Benefits & conditions

$154,388-$247,020 USD

Axon is a total compensation company, meaning compensation is made up of base pay, bonus, and stock awards. The actual base pay is dependent upon many factors, such as: level, function, training, transferable skills, work experience, business needs, geographic market, and often a combination of all these factors. Our benefits offer an array of options to help support you physically, financially and emotionally through the big milestones and in your everyday life. To see more details on our benefits offerings please visit ;br> Base Pay Range

$134,250-$214,800 USD

Axon is a total compensation company, meaning compensation is made up of base pay, bonus, and stock awards. The actual base pay is dependent upon many factors, such as: level, function, training, transferable skills, work experience, business needs, geographic market, and often a combination of all these factors. Our benefits offer an array of options to help support you physically, financially and emotionally through the big milestones and in your everyday life. To see more details on our benefits offerings please visit ;br> Base Pay Range

$134,250-$214,800 USD

Don’t meet every single requirement? That’s ok. At Axon, we Aim Far. We think big with a long-term view because we want to reinvent the world to be a safer, better place. We are also committed to building diverse teams that reflect the communities we serve.

About the company

At Axon, we’re on a mission to Protect Life. We’re explorers, pursuing society’s most critical safety and justice issues with our ecosystem of devices and cloud software. Like our products, we work better together. We connect with candor and care, seeking out diverse perspectives from our customers, communities and each other.

Life at Axon is fast-paced, challenging and meaningful. Here, you’ll take ownership and drive real change. Constantly grow as you work hard for a mission that matters at a company where you matter., This role is for someone who wants to help Axon turn internal AI ideas into dependable software. You will not only help applications get built - you will help make sure they keep working, remain secure, support real users, and can be maintained over time.

The best person for this role is a scrappy, ownership-oriented platform engineer who cares deeply about reliability, infrastructure, and operational excellence, and who is excited to support the next generation of AI-powered internal tools at Axon.

Axon is a total compensation company, meaning compensation is made up of base pay, bonus, and stock awards. The actual base pay is dependent upon many factors, such as: level, function, training, transferable skills, work experience, business needs, geographic market, and often a combination of all these factors. Our benefits offer an array of options to help support you physically, financially and emotionally through the big milestones and in your everyday life. To see more details on our benefits offerings please visit ;br> Base Pay Range

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