Avatar for zaimler.ai
zaimler.ai
Actively Hiring

Cloud Infrastructure Engineer

Reposted: 1 month ago• Recruiter recently active
Job Location
Visa Sponsorship

Not Available

RelocationAllowed
Hiring contact
Caleb Burns
Employee
image

About the job

About zaimler

zaimler is building the next-generation semantic platform that links fragmented enterprise data and extracts meaning with knowledge-distilled models. We’re creating the foundation for AI systems that don’t just generate, but retrieve, link, and reason over enterprise knowledge.

In just over a year, we’ve begun partnering with Fortune 500 design partners in insurance, travel, and technology, deploying our semantic platform into some of the world’s most complex and high-volume data ecosystems. Our platform enables enterprises to make their data AI-ready from the start: automating ontology creation, data mapping, and retrieval-augmented reasoning at scale.

Our team comes from LinkedIn, Visa, Meta, and Branch, and has spent decades solving data and infrastructure challenges at scale. Backed by top VCs, we’re building the next foundational layer for enterprise AI.

What You’ll Do

As our Founding Cloud Infrastructure Engineer, and an early hire in our Bangalore office, you’ll build the foundation of zaimler’s cloud infrastructure while shaping our presence in India. You’ll also play a key role in supporting our customers across the Asia-Pacific region, ensuring the systems you design scale globally and deliver real impact locally

Key Responsibilities

  • Architect & Scale Infra: Design and deploy secure, fault-tolerant cloud infrastructure across AWS/Azure/GCP, using Kubernetes, Terraform, and modern IaC tools.
  • Enable Distributed AI Workloads: Build and optimize compute systems for distributed frameworks like Ray and Kafka, ensuring scalability and reliability.
  • GPU Orchestration: Manage GPU resources and scheduling for ML inference, retrieval, and training workloads.
  • Drive Observability & Reliability: Implement monitoring, security, and best practices for high-availability ML/AI systems.
  • Collaborate Across Teams: Work hand-in-hand with ML researchers and data scientists to ensure infra accelerates, not hinders, development.

Who We’re Looking For

  • We’re open to multiple levels of seniority (3–10+ years of engineering experience). What matters most is founder mindset + strong infra chops.
  • Hands-on with Kubernetes + Terraform (real-world deployments, not just exposure).
  • Experience with distributed systems (Ray, Dask, Spark, or similar).
  • Exposure to Kafka or equivalent MQ systems.
  • Strong programming/scripting in Python, Go, or similar.
  • Track record of building or operating production-grade infra.

Nice to Haves

  • GPU scheduling/optimization experience.
  • Prior startup/early-stage build-from-scratch experience.
  • Experience supporting ML/AI workloads in production.
  • Founder Traits
  • Excited to own infra end-to-end as the first dedicated hire.
  • Comfort with ambiguity; thrives in fast-moving, collaborative teams.
  • Curiosity + grit: hungry to learn where gaps exist.

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