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Member of Technical Staff – AI Inference platform @ Lyceum

DEOnsiteFull-time
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About this role

Your missionYou will make Lyceum's AI inference platform reliable, secure, and scalable - ensuring it performs under pressure as we grow to thousands of concurrent users. While others on the team expand what the platform can do, your job is to make sure it keeps working, fails gracefully, and gets faster over time.

Your focus

Scalability: Architect and implement the systems that allow our inference platform to scale to thousands of concurrent users. This includes request routing, load balancing, autoscaling, and resource scheduling across GPU clusters.

Reliability and observability: Build robust monitoring, alerting, and incident response tooling. Design for graceful degradation, automatic recovery, and minimal downtime.

Performance engineering: Profile and optimise the full inference path from request ingestion through model execution to response delivery. Identify and eliminate bottlenecks at every layer.

Infrastructure evolution: Evaluate and integrate open-source inference frameworks and tooling (Dynamo, vLLM, Triton, etc.) where they improve throughput, latency, or stability of the serving stack.

Your KPIs

Platform uptime and availability (SLA adherence)

P50/P95/P99 latency and throughput under load

Time-to-detection and time-to-resolution for incidents

Scalability milestones (concurrent users, requests per second, GPU utilisation)

Your profileWe consider candidates from diverse backgrounds, with a deep love for technical challenges and the desire to take on ownership beyond what's reasonably expected.

Requirements

3+ years of experience in backend, infrastructure, or systems engineering

Strong proficiency in Go and Python

Experience building or operating a model serving platform or ML platform

Solid understanding of systems performance - profiling, benchmarking, and optimising latency and throughput

Familiarity with observability tooling (Prometheus, Grafana, OpenTelemetry, or similar)

Understanding of security fundamentals - network isolation, authentication, encryption, multi-tenancy

Nice to have

Experience with NVIDIA Dynamo or similar inference orchestration/routing frameworks

Hands-on experience with GPU serving infrastructure (vLLM, Triton, TensorRT-LLM)

Experience with Kubernetes in a production environment (deployment, networking, resource management)

Experience operating at scale (10k+ RPS, multi-region, multi-cluster)

Comfortable working on-call or in incident response when things break

Why us?Outstanding team: Work with some of the best engineers in the world, coming from hedge funds, big tech, AI startups and top universities

Once in a lifetime opportunity: Early-stage company in the fastest-growing market in the world

Ownership: Shape how European AI companies access GPU compute

European mission: Build sovereign, GDPR-compliant AI infrastructure for the next generation of deep-tech

Skills

Engineering

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