Staff Site Reliability Engineer

Sight Machine, Inc.

$200K — $260K *
Information Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 5+ years of professional infrastructure or DevOps engineering experience at scale in a cloud-native environment.
  • Deep hands-on experience with Kubernetes and Docker across at least one major cloud provider.
  • Strong Infrastructure as Code (IaC) fluency with tools like Terraform and Helm.
  • Real fluency with AI development tools, using them to enhance automation and tooling.
  • Solid coding ability in a scripting language (Python, Go, etc.).
  • Strong Linux fundamentals and knowledge of networking basics.
  • Experience with monitoring and alerting stacks like Prometheus or Sentry.

Responsibilities

  • Own and evolve Kubernetes-based cloud infrastructure, including fleet management and networking.
  • Design and implement CI/CD pipelines for faster and more reliable deployments.
  • Build AI-assisted automation for operational tasks to minimize manual intervention.
  • Drive Infrastructure as Code discipline for reproducible and auditable environments.
  • Build and maintain monitoring systems for comprehensive observability across the stack.
  • Participate in on-call rotations to improve incident response and system reliability.
  • Collaborate with development teams to align operations with built systems.

Benefits

  • Growth and mentorship opportunities in tackling real-time industrial scale problems.
  • Work in a collaborative environment where craft and improvement are prioritized.
  • Access to diverse technologies and challenges in cloud infrastructure.
Full Job Description
About the team

Sight Machine is built on the shoulders of a unique, robust and highly scalable Infrastructure as Code model. This enables the creation and operation of customer instances in our ecosystem in a standardized and simplified manner. We are looking for team members to help us build, maintain, and improve the infrastructure that makes Sight Machine the leading provider of Manufacturing Data Pipelines and Analytics.

Great things happen when people can bring their authentic selves to work. We empower all of our team members to share their perspectives, passions and experiences because collectively we make a better, stronger team through always "open communications" mind.

Our team collaborates closely with peers & cross functional stakeholders throughout the business, our clients on the forefront of digital transformation, and the cutting edge of digital manufacturing thought leadership.

Sight Machine has offices in San Francisco, CA and Ann Arbor, Mi. We do have a remote-friendly culture with people based all around the US and the rest of the world. For this role in particular, the ideal candidate is located near either of our offices and willing to work in a hybrid capacity. We would still consider 100% remote for exceptional candidates if they aren't located near an office.

About the role

Join the Cloud Infrastructure Team as a technical leader driving reliability, automation, and scalability across the systems running Sight Machine's platform. You'll operate at the intersection of classic SRE discipline which include IaC, CI/CD, observability, incident response and the emerging demands of running agentic AI systems in production: LLM gateways, agent orchestration, and the operational patterns that come with non-deterministic workloads.

This is a senior level IC role. You'll help set and drive technical direction for infrastructure and reliability practices across teams, mentor senior engineers, and be a primary escalation point for the org's hardest systems problems while still being hands-on with code, infrastructure, and incidents.

Success requires deep technical range, sound judgment on risk vs. customer impact, and the ability to influence architecture decisions across Development Engineering without formal authority.

What You'll Actually Work On

  • Champion an agentic-AI-first engineering mindset: identify where AI-driven automation and agent-based tooling can replace manual toil, and hold that work to the same quality, testing, and reliability bar as any other production system
  • Evolve reliability practices for meeting reliability SLO's, error budgets, drive incident postmortems to systemic (not just symptomatic) fixes, and lead reliability reviews for new services before they hit production
  • Troubleshoot and resolve the org's most complex, cross-layer systems problems CI/CD, container orchestration, networking, OS, cloud resources, databases, and increasingly, agentic AI/LLM orchestration layers
  • Design, build, and operate the infrastructure supporting agentic AI workloads, LLM gateway routing, agent orchestration frameworks, monitoring of non-deterministic/AI-driven services, and the operational tooling needed to run them reliably at scale
  • Architect and instrument monitoring, alerting, and observability infrastructure for critical services, with an eye toward what "critical" means for AI-driven systems specifically
  • Author and continuously improve operational runbooks and automation, increasingly incorporating agentic/AI-assisted tooling (e.g., automated triage, AI-assisted incident response) where it measurably reduces toil
  • Design and build internal platforms and developer tooling that other engineers build on top of
  • Participate in on-call coverage and help evolve the program as we scale including escalation paths and reducing avoidable pages through better automation
  • Bring a startup mindset of daily engagement: staying close to what's breaking, what customers are hitting, and where the team needs help, even outside a formal ticket or rotation
  • Mentor senior and mid-level engineers; act as a technical sounding board across teams
  • Proactively identify and drive cross-team initiatives that improve stability, reliability, and availability, this is expected to be self-directed, not assigned

What We're Looking For

  • Demonstrated experience designing, building, or operating agentic AI/LLM-based systems in production, held to the same quality-first, test-driven rigor as traditional infrastructure code, not just prototype-grade work
  • Embody a quality-first and security-first culture in all that you do
  • 10+ years of experience with Kubernetes/Docker in at least one top-tier cloud provider (Azure, GCP, AWS), including production-scale multi-tenant or multi-cluster environments
  • 10+ years coding experience (Python, Go, Java, or similar) with a track record of building tools/platforms used by other engineers, not just scripts
  • 10+ years with IaC and CI/CD tooling (Terraform/OpenTofu, FluxCD or similar GitOps tooling, Jenkins/GitHub Actions)
  • Strong, provable Linux and networking fundamentals (TCP/IP and application-layer)
  • Practical experience integrating or operating LLM/agentic AI systems in a production context this can be API-based orchestration, LLM gateways, or agent frameworks
  • A track record of authoring technical documentation (design docs, ADRs, runbooks) that other engineers actually use
  • Demonstrated mentorship of other engineers, without needing formal management authority to do it
  • Strong bias for action over endless planning, hands-on, has made mistakes, learned from them, and can weigh risk vs. customer impact under pressure
  • Clear, empathetic communicator, comfortable pushing back on architecture decisions across teams
  • Operational experience with monitoring/alerting systems (Prometheus, Grafana, Loki, Sentry, Signoz or equivalents)
  • Deep understanding of cloud performance, able to diagnose and resolve bottlenecks others can't

Nice to Have

  • Experience with elements of our current tech stack are a plus: Kubernetes, FluxCD, Terraform, Helm Charts, Prometheus, Elasticsearch, Python, Java, Kafka, Postgres, and Jenkins
  • Previous experience or a keen interest in industrial IoT, analytics, or manufacturing a plus


The pay range for this role is:

200,000 - 260,000 USD per year (San Francisco, CA)

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