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Vacantes / Kayak

Staff Data Platform Engineer

Kayak·Berlin Office

En corto

  • →Ingeniero de plataforma de datos que arquitecta sistemas de datos a gran escala para soportar análisis y machine learning en KAYAK.
  • →Día a día: diseño de arquitectura, gestión de pipelines streaming, gobernanza de esquemas y mejora de observabilidad en entornos cloud.
  • →Destacado: liderazgo técnico en soluciones de datos de impacto company-wide, con foco en durabilidad y escalabilidad.

Proficient English required for collaboration across global teams.

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En ~1 minuto te damos: quién te entrevista, las preguntas probables con respuestas desde tu CV, y tu CV adaptado a esta vacante. Tu primer dossier es gratis.

Las preguntas que te van a hacer

1. ¿Cómo has diseñado un sistema de gobernanza de esquemas en un entorno lakehouse de alta escala?

2. Describe un caso en que gestionaste el lag en un pipeline streaming en producción.

3. ¿Qué estrategias usas para validar la calidad de datos en una capa semántica escalable?

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💵 USD · Remote · No visa

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¿Qué piden?

  • ✓7+ años en ingeniería de datos con experiencia en nivel senior/staff.
  • ✓Experiencia en arquitecturas lakehouse con Apache Iceberg, Parquet y almacenamiento en nube.
  • ✓Construcción de pipelines streaming con entrega exactamente una vez y manejo de lag.
  • ✓Experiencia comprobada con contratos de datos, gobernanza de esquemas y capas semánticas.
  • ✓Habilidades sólidas en Python para código mantenible y testeable.
  • ✓Capacidad para liderar proyectos end-to-end y mentorar a otros ingenieros.

¿No cumplís todo? Es lo normal — tu dossier gratis te dice qué gaps tenés y cómo cubrirlos en la entrevista.

Apache IcebergParquetcloud object storagestreaming data pipelinesevent-driven ingestionexactly-once deliveryconsumer lag managementcheckpoint and recoveryschema governancemetadata systems

¿A quién escribirle en Kayak?

Tu dossier gratis identifica a las personas que te entrevistarían — con su background, qué valoran y cómo escribirles para destacar antes de aplicar.

KAYAK, part of Booking Holdings (NASDAQ: BKNG), is a leading travel search engine. With billions of queries across our platforms, we help people find their perfect flight, stay, rental car and vacation package. We're also transforming business travel with a new corporate travel solution, KAYAK for Business. As an employee of KAYAK, you will be part of a travel company that operates a portfolio of global metasearch brands including momondo, Cheapflights and HotelsCombined, among others. From start-up to industry leader, innovation is in our DNA and every employee has an opportunity to make their mark. Our focus is on building the best travel search engine leveraging AI and data to make it easier for everyone to experience the world. We are looking for a Staff Data Engineer to join our Data Platform team. Our team builds and operates the shared foundation that powers analytics, machine learning, business intelligence and AI-driven experiences across the entire company. As a senior individual contributor, you will shape how we move, store, govern, and serve data at scale, enabling every downstream team to build faster and with greater confidence. If you enjoy turning ambiguity into clear technical direction and durable solutions, we’d love to hear from you. This role will be required to work from our Berlin office 3 days per week. In this role, you will: Design and evolve the architecture of KAYAK’s shared Data Platform, including near-real-time streaming, lakehouse storage, schema management, semantic layer, and distributed query infrastructure. Make thoughtful trade-offs between latency, correctness, cost, and long-term maintainability. Deliver high-impact platform initiatives end-to-end — from problem framing and architecture design through implementation, rollout, and operational handoff. Define and promote technical standards for data contracts, schema evolution, ingestion patterns, and production readiness across platform and domain teams. Lead high-impact platform initiatives from problem framing and architecture design through implementation, rollout, and operational handoff. Develop reusable patterns and reference architectures for streaming ingestion, compaction, retention, schema governance, observability, and other recurring data engineering challenges. Establish reliable observability across the platform, including pipeline monitoring, consumer lag tracking, data quality checks, and alerting. Collaborate closely with Operations, Security, Engineering, Data Engineering, and Product to evolve the platform, build cross-functional support, and ensure the platform meets the needs of its users. Drive the semantic layer and metadata strategy that supports consistent and trusted self-service analytics and AI-driven data access. Evaluate technologies and approaches across streaming, storage, query, orchestration, and cloud infrastructure, balancing scalability, operational complexity, cost, and maintainability. Coach and mentor engineers through design reviews, code reviews, pairing, and reusable technical guidance. Own the most complex architectural and operational challenges on the platform, including failure recovery, schema drift, partition management, and performance degradation. Please apply if you have: 7+ years of professional experience in data engineering, with meaningful time spent at a senior or staff level with domain-wide technical scope. , Apache Iceberg), columnar storage (Parquet) and cloud object storage Experience building and operating streaming data pipelines — including event-driven ingestion, exactly-once delivery semantics, consumer lag management, checkpoint and recovery strategies, and failure handling in production environments. Hands-on experience with data contracts, schema governance, metadata, or semantic-layer systems.

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