Big Data/ Python Data Engineer (Hadoop Ecosystem)
- Toronto, ON
- Hybride
- Publié 8 sept. 2026
- 1 poste
60 $–70 $ / heure
Ouvre un site externe
- Type d’emploi
- Contrat
- Niveau d’expérience
- Chef d’équipe · 10+ ans
- Postuler avant le
- 8 oct. 2026
- Langue de l’offre
- anglais
- Heures de travail
- 40 heures par semaine
- Présence au bureau
- 3 jours par semaine
- Niveau d’expérience
- Mid-Senior level
- Mode de candidature
- La candidature directe est offerte
Résumé du poste
Design, develop, and optimize scalable data pipelines and real-time processing solutions using PySpark, Kafka, and Hadoop. Collaborate with cross-functional teams to implement ETL/ELT workflows and ensure data quality and governance.
Détails du poste
Data Engineer Toronto, ON - Hybrid: 3 days a week in office 6 Months Contract with possibility of extension 10-12+ Experience MUST Job Summary An experienced Data Engineer with strong expertise in Big Data technologies to design, develop, and support enterprise-scale data platforms. The ideal candidate should possess hands-on experience in PySpark, Apache Spark, Kafka, Hadoop ecosystem components, and Apache NiFi, with a strong understanding of data ingestion, transformation, and real-time processing frameworks. Key Responsibilities Design, develop, and optimize scalable data pipelines using PySpark, Spark, Hadoop, and Apache NiFi. Build and maintain batch and real-time data processing solutions. Develop and support Kafka-based streaming applications and event-driven architectures. Create and optimize ETL/ELT workflows for large-scale structured and unstructured datasets. Develop complex SQL queries for data extraction, transformation, validation, and troubleshooting. Implement data ingestion solutions from databases, APIs, files, and streaming sources. Monitor, troubleshoot, and enhance the performance of Spark jobs and data pipelines. Collaborate with architects, business analysts, and development teams to deliver high-quality data solutions. Support platform upgrades, deployments, testing, certification, and production releases. Ensure data quality, governance, security, and operational excellence across data platforms. Mandatory Skills PySpark Apache Spark (Spark SQL, DataFrames) Apache Kafka Hadoop Ecosystem (HDFS, Hive, YARN) Apache NiFi SQL Python Preferred Skills Spark Streaming Airflow / Oozie Hive Scala Jenkins, Bitbucket, Git JIRA, Confluence Cloud Platforms (GCP/AWS/Azure) Data Warehousing concepts and Dimensional Modeling
Ce que vous ferez
Design, develop, and optimize scalable data pipelines and real-time processing solutions using PySpark, Kafka, and Hadoop. Collaborate with cross-functional teams to implement ETL/ELT workflows and ensure data quality and governance.
Exigences
Requires over 10 years of experience with strong expertise in the Hadoop ecosystem, PySpark, and Apache NiFi. Proficiency in SQL and Python is mandatory for developing complex data extraction and transformation processes.
Compétences indiquées
- SQL · Souhaitée
- Git · Souhaitée
- Python · Souhaitée
Autres compétences pertinentes
Relevées dans la description du poste. Confirmez les exigences importantes ci-dessus.
- PySpark
- Apache Spark
- Apache Kafka
- Hadoop
- Apache NiFi
- SQL
- Python
- Spark Streaming
- Airflow
- Oozie
- Hive
- Scala
- Jenkins
- Bitbucket
- Git
- Cloud Platforms
Domaines d’emploi
- Data & Analytics
- Technology
- Software
- Engineering
- Consulting
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