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Est. Monthly
Estimated €5,505 - €8,500
Posted April 24, 2026 · 106 days agoLast seen August 7, 2026Est. expiry May 29, 2026

Data Platform Engineering Manager

London, United Kingdom
Remote · Software Engineering
Full-time · Manager
English
No People Management
8 years experience
How this salary compares
Salary Context: Data Platform Engineering Manager

Hover or tap a row for full statistics (EUR / month on this chart).

Salary analysis

Compared with the selected benchmark ("All roles in London, United Kingdom"), this listing's salary midpoint is about 94% lower. The offer sits below the benchmark range (€3,789–€15,737). The listed pay band (€459–€708) is tighter than the benchmark, which suggests lower salary variability. This benchmark is based on 9 comparable listings.

Monthly salary comparison for Data Platform Engineering Manager
MarketLower bound (25th percentile)MedianUpper bound (75th percentile)
All roles in London, United Kingdom€3,789/per month€7,003/per month€15,737/per month
Pay in our data — not quoted in ad (Manager)€459/per month€584/per month€708/per month
About the role

Building the Future of Open Finance Payward - the parent company behind Kraken, NinjaTrader, Breakout, xStocks, Payward Services and CF Benchmarks - has spent the last 15 years building one of the most modern and globally accessible financial infrastructure platforms in the industry, built to advance an open, global financial system. The team Founded in 2011, Kraken is one of the world's longest-standing crypto platforms, trusted by over 10 million individuals and institutions across the globe. It offers spot trading, margin, futures, staking, and OTC services, with products built for both individual investors and institutional clients. Kraken's Data Platform team builds the real-time infrastructure that powers decision-making across one of the world's largest digital asset exchanges. We operate at the intersection of streaming data, large-scale platform engineering, and AI-driven automation — processing billions of events daily across trading, compliance, and product systems. This role leads the team responsible for Kraken's streaming and data platform layer — designing systems that move, transform, and serve data in real time. You'll own the architecture around stream processing (RisingWave, Flink), drive adoption of AI-powered automation and workflows across the data stack, and build the platform primitives that the rest of engineering depends on. The opportunity - Lead and grow a team of senior data platform engineers building Kraken's real-time streaming infrastructure - Own the architecture and roadmap for high-volume low-frequency data systems, with focus on data stack like Spark, Kafka, Iceberg, RisingWave, Apache Flink - Design and operate scalable data architecture that serve trading, risk, compliance, analytics and many product teams. - Drive adoption of AI automation and intelligent workflows — automating data quality checks, pipeline orchestration, anomaly detection, and self-healing infrastructure - Partner with ML/AI, analytics, and product engineering teams to deliver platform capabilities that accelerate their work - Evolve Kraken's data-lake and warehouse architecture to support both batch and streaming workloads seamlessly - Set technical direction for the team — balancing reliability, velocity, and cost efficiency at scale - Hire, mentor, and retain top-tier platform engineers; build a culture of ownership and technical excellence What You Bring - 8+ years in data engineering, platform engineering, or distributed systems — with at least 3 years managing engineering teams - Experience and knowledge of building data-lakes in AWS (i.e. Spark, Athena, Iceberg, Parquet, Presto), including data modeling, data quality best practices, and self-service tooling. - Strong expertise in building and operating real-time data at scale including Kafka, Spark Streaming, Debezium, and CDC pipelines. - Proven ability to manage competing priorities across multiple stakeholder groups — aligning platform investments with the needs of product, finance, compliance, analytics, and other teams - Strong communicator — able to explain risks, trade-offs, and roadmap decisions to both senior technical audiences and non-specialist stakeholders. - Experience designing or adopting AI/ML-powered automation in data workflows — pipeline orchestration, intelligent monitoring, automated remediation, or LLM-integrated tooling - Proficiency in Python, Scala, or Java in a production data platform context - Solid understanding of cloud-native data infrastructure (AWS preferred — Glue, Athena, S3, EMR, Lambda, or equivalents) - Track record of managing, recruiting, and developing high-performing remote engineering teams - Ability to translate long-term platform vision into executable quarterly roadmaps - Servant-leadership style — you coach, unblock, and grow your engineers - AI-ready to 10X the team efficiency and overall output. Nice to haves - Experience with RisingWave and/or Clickhouse specifically — either in production or in serious evaluation - Familiarity with LLM-based agents or AI workflow frameworks (e.g. LangChain, LangGraph, custom orchestration) - Background in cryptocurrency, trading systems, or high-throughput financial data - Experience building self-service data platform tooling for internal engineering consumers - Contributions to open-source streaming or data infrastructure projects

Job Details

Responsibilities

  • Lead and grow a team of senior data platform engineers
  • Own architecture and roadmap for high-volume data systems (Spark, Kafka, Iceberg, RisingWave, Apache Flink)
  • Design and operate scalable data architecture for trading, risk, compliance, and analytics
  • Drive adoption of AI automation for data quality, pipeline orchestration, and anomaly detection
  • Partner with ML/AI, analytics, and product engineering teams
  • Evolve data-lake and warehouse architecture for batch and streaming workloads
  • Set technical direction balancing reliability, velocity, and cost efficiency
  • Hire, mentor, and retain top-tier platform engineers

Requirements

  • 8+ years in data engineering, platform engineering, or distributed systems
  • At least 3 years managing engineering teams
  • Experience building data-lakes in AWS (Spark, Athena, Iceberg, Parquet, Presto)
  • Expertise in real-time data at scale (Kafka, Spark Streaming, Debezium, CDC pipelines)
  • Proficiency in Python, Scala, or Java
  • Understanding of cloud-native data infrastructure (AWS Glue, Athena, S3, EMR, Lambda)
  • Track record of managing remote engineering teams
  • Ability to translate platform vision into quarterly roadmaps
  • Servant-leadership style

Skills & Technologies

AWSSparkKafkaIcebergRisingWaveApache FlinkAthenaParquetPrestoDebeziumCDC pipelinesPythonScalaJavaAWS GlueS3EMRLambda
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