Staff Software Engineer, Infrastructure (Cloud)

AeroVect

Paris

Sur place

EUR 110 000 - 150 000

Plein temps

14 jours+

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Résumé du poste

AeroVect in Paris, France, is seeking a Staff Software Engineer, Infrastructure (Cloud) to own data infrastructure powering its autonomous driving platform. You will design and scale pipelines moving operational data from real deployments into systems for development, testing, and improvement, ensuring reliability and performance.

You will build cloud-based infrastructure (AWS), implement infrastructure-as-code, develop internal services for data ingestion and observability, and work with

Qualifications

  • Bachelor's or Master's degree in Computer Science, Electrical Engineering, or a related field.
  • 7+ years of experience building cloud infrastructure and data systems for large-scale distributed systems.
  • Strong proficiency in Python with a focus on data pipeline development and automation.
  • Hands-on experience with Kafka, Kubernetes, and gRPC for building scalable, high-throughput data systems.
  • Deep expertise with AWS cloud services including compute, storage, and data processing.
  • Experience with CI/CD platforms (Jenkins, GitHub Actions, CircleCI).
  • Proficiency with containerization and orchestration (Docker, Kubernetes).
  • Experience automating deployments with Terraform or CloudFormation.
  • Familiarity with Git-based workflows, code review processes, and collaborative software development.

Responsabilités

  • Design, build, and maintain scalable data pipelines moving operational data from on-prem systems into cloud infrastructure.
  • Architect and manage cloud-based infrastructure (AWS) for scalable computation, data processing, and system telemetry.
  • Integrate on-prem and cloud data flows into a cohesive, reliable data architecture.
  • Build and maintain CI/CD pipelines to enable rapid, reliable software delivery and validation across simulation and real-world testing environments.
  • Implement and manage infrastructure-as-code (Terraform, CloudFormation) for consistent, automated provisioning.
  • Develop internal services and automation tools to streamline data ingestion, processing, and observability.
  • Establish and enforce best practices for data reliability, pipeline observability, and system security.
  • Drive root-cause analysis for data infrastructure and pipeline issues; design long-term solutions to improve system resilience.
  • Collaborate with autonomy and systems engineers to define scalable data interfaces and cloud deployment strategies.

Connaissances

Python
Kafka
Kubernetes
gRPC
AWS
CI/CD
Docker
Terraform
CloudFormation
Git workflows

Formation

CS/EE degree

Description du poste

Who We Are

AeroVect is transforming ground handling with autonomy, redefining how airlines and ground service providers around the globe run day-to-day operations. We are a Series A company backed by top-tier venture capital investors in aviation and autonomous driving. Our customers include some of the world’s largest airlines and ground handling providers. For more information, visit www.aerovect.com.

As a Staff Software Engineer, Infrastructure (Cloud), you will own the data infrastructure and cloud systems that power AeroVect's autonomous driving platform. You'll design and scale the pipelines that move operational data from real-world deployments into the systems that drive development, testing, and continuous improvement — ensuring reliability and performance

This is a highly impactful role at the intersection of cloud infrastructure and data engineering. You'll have real ownership — designing systems from the ground up, not inheriting a finished stack. The opportunity to grow into a technical leadership role is real as the team scales.

You Will
  • Design, build, and maintain scalable data pipelines that move operational data from on-prem systems into cloud infrastructure
  • Architect and manage cloud-based infrastructure (AWS) for scalable computation, data processing, and system telemetry
  • Integrate on-prem and cloud data flows into a cohesive, reliable data architecture
  • Build and maintain CI/CD pipelines to enable rapid, reliable software delivery and validation across simulation and real-world testing environments
  • Implement and manage infrastructure-as-code (Terraform, CloudFormation) for consistent, automated provisioning
  • Develop internal services and automation tools to streamline data ingestion, processing, and observability
  • Establish and enforce best practices for data reliability, pipeline observability, and system security
  • Drive root-cause analysis for data infrastructure and pipeline issues; design long-term solutions to improve system resilience
  • Collaborate with autonomy and systems engineers to define scalable data interfaces and cloud deployment strategies
You Have
  • Bachelor's or Master's degree in Computer Science, Electrical Engineering, or a related field
  • 7+ years of experience building cloud infrastructure and data systems for large-scale distributed systems
  • Strong proficiency in Python with a focus on data pipeline development and automation
  • Hands-on experience with Kafka, Kubernetes, and gRPC for building scalable, high-throughput data systems
  • Deep expertise with AWS cloud services including compute, storage, and data processing
  • Experience with CI/CD platforms (Jenkins, GitHub Actions, CircleCI)
  • Proficiency with containerization and orchestration (Docker, Kubernetes)
  • Experience automating deployments with Terraform or CloudFormation
  • Familiarity with Git-based workflows, code review processes, and collaborative software development
We Prefer
  • Experience integrating on-prem and cloud data flows in a hybrid infrastructure environment
  • Background in data engineering for robotics, autonomous systems, or real‑time operational data
  • Knowledge of monitoring, logging, and alerting tools such as Prometheus, Grafana, or the ELK Stack
  • Familiarity with networking, security, and distributed system performance optimization
  • Experience supporting safety-critical, real‑time, or high-availability systems
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