Senior Software Engineer - Data Platform

Next 10 Capital LLC
New York, NY, United States
23 days ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Experience level
Expert
Experience required
5 years minimum
Working hours
Regular working hours

Tech stack

Query Performance Java (Programming Language) Application Programming Interfaces (APIs) Agile Methodology Artificial Intelligence Airflow Amazon Web Services Automation of Tests Unit Testing BigQuery Software Quality Code Review
+36 more
Continuous Integration Information Engineering Data Infrastructure Extract Transform Load (ETL) Software Debugging Software Design Documents DevOps Distributed Systems Monitoring of Systems Apache Hive Python (Programming Language) Machine Learning Network Monitoring Network Administration Operational Databases Software Tools Rule Engine Software Engineering SQL Databases Management of Software Versions Workflow Management Systems Data Processing Snowflake Kubernetes Information Technology Data Lineage Apache Flink Complex Event Processing Apache Kafka Spark Streaming Presto Data Lakehouse Vertica Stream Processing Data Pipelines Service Stack

Job description

The team believes that each member plays a vital role in the success and sustainability of the group. To support this, it provides an environment where professionals can grow, develop their skills, collaborate with diverse colleagues, share knowledge, and build a rewarding career. The organization is seeking a Senior Software Engineer - Data Platform to join the Data Engineering team in NYC. In this role, you will help build the modern data processing platform behind proactive network monitoring - a core capability of the managed network services product used across thousands of enterprise and government sites. This is product engineering, not internal tooling: real-time visibility and automated detection are central to how the organization differentiates in the managed network services market. What this platform detects, and how quickly, directly impacts customer experience. Role and Responsibilities

  • Data Pipeline & Ingestion: Design, build, and operate reliable, scalable, data-intensive pipelines carrying high-volume device and network telemetry - including ingestion and orchestration across monitoring systems, device and satellite terminal telemetry, and third-party vendor APIs.
  • Real-Time Event Processing: Build and evolve stateful, real-time event processing that transforms raw telemetry into meaningful operational events at scale.
  • Workflow & Rule Engine: Extend and enhance the detection and workflow engine to support client-specific flow paths and parameters through managed configuration accessible in the product interface, including authoring, validation, and versioning.
  • Event & Incident Flow Visibility: Partner with product and front-end engineers to expose event and incident monitoring flow in the product experience - clarifying what was detected, what it triggered, and its current status. Own the data models, APIs, and services behind these views.
  • Observability & Data Lineage: Instrument the platform so engineers can trace events end-to-end and understand system behavior - including per-job telemetry, retry semantics, and lineage back to the source.
  • Data Lakehouse & Storage: Contribute to the design and evolution of the data lakehouse - table and partition design, schema evolution, storage lifecycle, and query performance for analytics and reporting.
  • Technology Stack Evolution: Support ongoing upgrades to the technology stack and architecture to meet evolving product and customer needs.
  • Cloud & DevOps: Build and operate services on containerized infrastructure, deploying through CI/CD and following established deployment and infrastructure patterns.
  • Design & Code Quality: Translate requirements into technical design and high-quality code. Write design docs and diagrams for significant changes, participate in code reviews, and share a light on-call rotation for owned pipelines.
  • AI-Augmented Engineering: Use AI-assisted engineering tools as a core part of the development workflow, with the judgment to guide and validate their output., Lead Machine Learning Engineer (Python, AWS, SQL, GenAI) (Enterprise Platforms Technology) As a Capital One Machine Learning Engineer (MLE), you’ll be part of an Agile team dedicat…
  • 1 day ago +

Requirements

  • Degree in Computer Science, Engineering, or equivalent experience
  • 5+ years of professional software engineering, with substantial experience building production data pipelines and workflow or rule engines
  • Strong Java or Python skills - ideally both
  • Hands-on production stream processing experience (Flink, Kafka Streams, Spark Structured Streaming, or Beam)
  • Practical Apache Kafka knowledge beyond basic consumer usage
  • Experience with workflow or ETL orchestration tools (Dagster preferred; Airflow or Prefect acceptable)
  • SQL fluency and experience with columnar or lakehouse query engines (Trino, Presto, Spark SQL, Snowflake, BigQuery, ClickHouse, or StarRocks)
  • Comfort operating in Kubernetes
  • Ability to debug distributed systems under pressure
  • Familiarity with unit testing, automated testing, and CI/CD
  • Proficiency with AI-assisted development tools
  • Strong communication skills across technical and non-technical audiences

About the company

This organization is a global communications solutions provider offering a comprehensive suite of fully managed services focused on secure connectivity, networking, and mobility. It simplifies communications and network operations for businesses and government agencies. Its customers include many Fortune 500 companies, and it is recognized as a leader in the industry. With one of the broadest portfolios of technology and integrated partnerships - along with a private network - the organization delivers tailored solutions across design, deployment, and ongoing management, driving cost savings, efficiency, innovation, and the ability for clients to focus on core objectives.

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