Staff Data Engineer

Austin, TX, US • Posted 14 hours ago • Updated 1 hour ago
Full Time
On-site
Fitment

Dice Job Match Score™

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Job Details

Skills

  • Vulnerability Management
  • RVM
  • Management
  • Music
  • Design Review
  • Threat Analysis
  • Leadership
  • RADIUS
  • Analytics
  • Data Engineering
  • Technical Direction
  • Apache Hadoop
  • Java
  • Python
  • Scala
  • Data Architecture
  • Data Modeling
  • SQL
  • Attention To Detail
  • Communication
  • Collaboration
  • IT Strategy
  • Amazon S3
  • Amazon EC2
  • Remote Desktop Services
  • Amazon RDS
  • OSI Model
  • Load Balancing
  • Routers
  • Network
  • NetFlow
  • Firmware
  • Cloud Computing
  • Amazon Web Services
  • Google Cloud
  • Google Cloud Platform
  • Apache Flink
  • Apache Spark
  • Apache Storm
  • Apache Kafka
  • Streaming
  • Elasticsearch
  • Apache Solr
  • NoSQL
  • Apache HBase
  • Apache Cassandra
  • MongoDB

Summary

We are the Risk and Vulnerability Management (RVM) team in Apple Services Engineering (ASE) Security. We manage security risk for the infrastructure, platforms, and services behind iCloud, App Store, Apple Music, TV+, and Commerce. Findings reach us from scanners, red team engagements, design reviews, vendor advisories, threat intelligence, and bug bounty. Our job is to turn all of that into one prioritized backlog engineering teams can work from, and a posture picture leadership can trust.

Most of that job is data work. Signal arrives from dozens of systems at different quality and age, and it rarely says which asset, which service, or who owns it, so someone pieces that together by hand before anyone can act on it. That manual step sets the ceiling on how fast we identify and triage risk, and on how fast our partners can fix it. We are consolidating this onto one security data platform: a system of record for findings, a graph for ownership and blast radius, and a lakehouse for posture metrics and analytics.

Description

We are looking for a Staff Data Engineer to lead the data engineering and data architecture behind it. You will own the data model and the pipeline contracts other teams build against, move pipelines from prototype into production the business depends on, and make ownership attribution and risk enrichment a service instead of repeated one-off work. Success here takes deep distributed data engineering experience, real data judgment, and the ability to hold a technical direction across a large, matrixed engineering organization.

Minimum Qualifications

15+ years of experience working with Spark and other distributed data technologies (e.g. Hadoop, Presto, Flink, Druid) for building efficient & large scale data pipelines

Highly proficient in at least one of Java, Python or Scala

Deep expertise in Data Principles, Data Architecture & Data Modeling, Strong SQL skills

Strong problem solver with meticulous attention to detail, capable of taking on loosely defined problems

Experience working in a complex, matrixed organization involving cross-functional, and/or cross-business projects

Strong communication and collaboration skills & ability to lead high-level discussions on technology strategy and approach

Conceptually familiar with AWS cloud resources (S3, EC2, RDS etc)

Conceptually familiar with OSI model and understanding of how network works (Load Balancer, Routers, network tagging, NetFlow)

Conceptually familiar of the full technology stack (from BMCs, Firmware, to OS layer, to containers and applications) primitives

Preferred Qualifications

Experience with Cloud Computing platforms like Amazon AWS, Google Cloud

Experience with building stream-processing applications using Apache Flink, Spark-Streaming, Apache Storm, Kafka Streams or others

Experience with Search systems (such as ElasticSearch, Solr), NoSQL datastores (such as HBase, Cassandra, MongoDB)

Experience building distributed, high-volume data services is a plus
Employers have access to artificial intelligence language tools (“AI”) that help generate and enhance job descriptions and AI may have been used to create this description. The position description has been reviewed for accuracy and Dice believes it to correctly reflect the job opportunity.
  • Dice Id: 90733111
  • Position Id: cf0f7bbbea53cfb6d63ada036606cd92
  • Posted 14 hours ago
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