Senior Software Engineer, Data Platform

NxT Level
Torrance, CA, United States
1 day ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Experience level
Expert
Compensation
$200,000.0 - $240,000.0
Working hours
Regular working hours
Job source

Tech stack

Application Programming Interfaces (APIs) Artificial Intelligence Airflow Data Analysis Big Data Data Discovery Data Infrastructure Information Leak Prevention Shard (Database Architecture) Hardware Interface Design Python (Programming Language) Metadata
+10 more
NumPy SciPy TypeScript Management of Software Versions Workflow Management Systems Pandas Data Management Machine Learning Operations Api Design Data Pipelines

Job description

Our client is hiring a Senior Software Engineer, Data Platform to help build the real-time ML data platform behind autonomous and semi-autonomous marine systems. This is a high-impact role for an engineer who is passionate about autonomy, maritime sensing, defense technology, and large-scale data infrastructure. You’ll help define how raw maritime signals become clean, consistent, labeled datasets that power perception models, foundation models, evaluation systems, and AI-driven analytics. The core challenge is building a platform that can ingest, process, store, reprocess, and analyze data from thousands of marine systems across a wide range of sensors, hardware interfaces, and data sources - all with a high bar for security, reliability, reproducibility, and performance. What You’ll Do

  • Build and operate a real-time ML data platform for autonomous and semi-autonomous marine systems
  • Define how raw maritime signals become clean, consistent, labeled datasets for perception and foundation models
  • Build post-processing pipelines that align, resample, and calibrate multi-sensor data
  • Create robust backfill and reprocessing frameworks for historical data
  • Apply new filters, synchronizations, label corrections, and metadata enrichments across large datasets
  • Establish lineage, versioning, and reproducibility standards for ML experiments
  • Build dataset discovery and access APIs/SDKs for downstream users
  • Enable teams to query datasets by time, region, modality, labels, and quality flags
  • Instrument data quality metrics across completeness, corruption, drift, label density, class balance, and regional coverage
  • Build dashboards, alerts, and canary dataset builds to improve data reliability
  • Optimize storage layouts for fast reads, parallelization, compression, chunking, sharding, locality, and prefetching
  • Partner closely with ML, perception, hardware, and product teams to map data contracts to model needs

Requirements

  • Strong experience building data platforms, ML infrastructure, or large-scale data processing systems
  • Experience owning dataset quality, reproducibility, lineage, and evaluation fidelity
  • Strong Python experience and comfort with modern data tooling
  • Experience with tools such as PyArrow, Polars, Pandas, NumPy, SciPy, or similar libraries
  • Experience working with audio, vision, telemetry, sensor, or time-series data
  • Strong understanding of data pipelines, dataset versioning, metadata, and quality monitoring
  • Experience building APIs, SDKs, or access layers for data discovery and consumption
  • Ability to design systems that support both real-time and historical reprocessing workflows
  • Comfort working closely with ML, perception, hardware, and product teams
  • Strong ownership, technical judgment, and ability to operate in a fast-moving startup environment Bonus Experience

  • Experience owning “dataset-as-a-product” systems used across multiple model families
  • Experience building curated corpora with strong lineage, documentation, and reproducibility
  • Experience designing dataset splitting or sampling strategies by time, platform, geography, class, signal quality, or similar dimensions
  • Experience preventing data leakage and improving model generalization through thoughtful dataset design
  • Hands-on experience with labeling workflows, ontologies, consensus systems, QA, or label-store integrations
  • Experience with Go, Rust, or TypeScript for services
  • Experience with orchestration tools such as Airflow or Prefect
  • Experience with metadata and lineage tools such as MLflow or Weights & Biases
  • Exposure to edge or sensor data, including audio, sonar, video, telemetry, time synchronization, or geospatial context
  • Experience in defense, maritime, autonomy, robotics, aerospace, or national security technology

Benefits & conditions

  • Join a mission-driven company building technology for the maritime domain
  • Work on hard data infrastructure problems across autonomy, sensing, perception, and ML
  • Build the platform that turns raw sensor data into reliable model-ready datasets
  • Partner closely with a high-caliber team across software, hardware, ML, and product
  • Help shape foundational systems as an early member of the team
  • Work on technology with real implications for global security, maritime operations, and autonomous systems
  • Step into a role with significant ownership, technical depth, and long-term impact Benefits

  • Competitive salary
  • Long-term equity incentive program with significant growth potential
  • Flexible PTO and paid holidays
  • Comprehensive medical, dental, and vision insurance
  • 401(k)
  • Lunch and snacks provided in office
  • Unique work environment blending technology, maritime systems, and defense

About the company

Our client is building advanced sonar and sensing systems designed to bring real-time intelligence to the maritime domain. Their technology sits at the intersection of autonomy, sensing, perception, and defense. The team is building full-stack systems across physics, hardware interfaces, data, machine learning, perception, and product. The company is backed by a mission-driven team with experience from some of the most respected technology, aerospace, defense, and AI organizations in the world. They believe the maritime domain will shape the next century of economics, geopolitics, and global security - and they are building the technology to help define that future.

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