Gramian Consulting

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Founding Engineer – Industrial AI Platform, Data Infrastructure

ContractRemoteTeam 2-10Since 2025Company SiteLinkedIn

Location

Texas

Posted

6 days ago

Salary

Not specified

Bachelor DegreeEnglishCloudDistributed SystemsETL

Job Description

• Design and implement end-to-end data pipeline architecture spanning edge devices, ingestion, processing, storage, and delivery into analytics/AI workloads • Build scalable ETL and data processing frameworks with orchestration, schema management, versioning, and automated data quality controls • Develop real-time and streaming infrastructure supporting event-driven systems, edge-to-cloud synchronization, buffering strategies, and strict latency requirements • Own DevOps and infrastructure engineering, including CI/CD pipelines, infrastructure-as-code, container orchestration, and production deployment workflows • Implement and maintain security architecture across the stack, including access controls, secrets management, network segmentation, vulnerability scanning, and compliance practices • Establish strong observability, monitoring, and operational tooling for distributed systems running across cloud, edge, and enterprise integrations • Support onboarding of complex multimodal data sources including telemetry, time-series, video, audio, LiDAR, and geospatial datasets

Job Requirements

  • Strong engineering background from leading technology companies or large-scale production environments (for example globally recognized tech firms, large enterprise platforms, or similarly demanding engineering organizations)
  • Proven experience building production-scale data pipelines or ETL systems handling large-scale streaming and batch datasets
  • Hands-on work with real-world industrial or multimodal data sources, such as sensor telemetry, time-series, geospatial, video, audio, or point-cloud data
  • Strong experience owning infrastructure and DevOps in production environments, including CI/CD, containers, orchestration, and operational reliability
  • Practical experience implementing security engineering practices such as threat modeling, secrets management, system hardening, and secure architecture design
  • Experience as an early engineer or key technical owner building systems from scratch through production deployment

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