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1 ימים
דרושים בOne DatAI
Location: Petah Tikva
Job Type: Full Time and Hybrid work
Were looking for a data Architect who loves designing scalable, secure data platforms and working with cutting-edge technologies.

:What youll do
Design and own the end-to-end Databricks lakehouse architecture
Define ingestion, processing and governance patterns (Delta Lake, Unity Catalog)
Lead technical design and best practices for Spark-based pipelines
Guide engineering teams on performance, cost optimization and CI/CD
Requirements:
:What were looking for
7+ years of experience in data engineering / data architecture
Strong hands-on experience architecting solutions on Databricks (must)
Solid knowledge of Python, Spark & SQL
Deep understanding of lakehouse architecture, Delta Lake and Unity Catalog
Experience designing streaming / incremental pipelines, data security and governance

:Nice to have
Experience with AWS, Azure, GCP, Snowflake, dbt
Databricks certification (e.g., data Engineer Professional / Solutions Architect) or GCP Professional Cloud Architect / data Engineer
This position is open to all candidates.
 
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2 ימים
דרושים בOne DatAI
מיקום המשרה: מספר מקומות
סוג משרה: משרה מלאה ועבודה היברידית
הצטרפו לצוות טכנולוגי המוביל פרויקטים חדשניים ויישום פתרונות מתקדמים בתחום!
להשתלבות במשרה מלאה במשרדי החברה ברמת גן, איילון
שילוב היברידי- יום מהבית
דרישות:
דרישות התפקיד (חובה)
*לפחות 2-4 שנות ניסיון בפיתוח ב-Qlik Sense
*ניסיון משמעותי בפיתוח E2E ב-Qlik
*שליטה ב-SQL
*ניסיון או היכרות בQlik NPrinting להפקה והפצה אוטומטית של דוחות- יתרון

התפקיד כולל:
*פיתוח מקצה לקצה ב-Qlik מול המחלקות העסקיות השונות
*יישום דרישות ותחזוקה של המערכת הקיימת
*עבודה בסביבה טכנולוגית מתקדמת וחדשנית- AI, Python

יתרונות:
*ניסיון בפיתוח QS למערכות גדולות 
*יכולת עבודה עצמאית וצוותית
*ניסיון ב- Python וכלי AI המשרה מיועדת לנשים ולגברים כאחד.
 
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חברה חסויה
Location: Petah Tikva
Job Type: Full Time
We are looking for a strong, hands-on Data Engineer to join our team and play a key role in building our data infrastructure from the ground up. In this role, you will design and implement scalable data pipelines and platforms, supporting both batch and real-time use cases. You will work closely with analysts and stakeholders to deliver reliable, high-quality data solutions, and take full ownership of data flows - from ingestion to consumption. This is a great opportunity for an executor who enjoys building, moving fast, and making an impact.
What will your job look like?
Design, build, and maintain robust and scalable data pipelines (batch and real-time) end-to-end.
Design and implement scalable, flexible data architectures to support evolving business needs.
Build and manage data platforms, including data lakes and data warehouses.
Integrate multiple data sources (structured and unstructured) into a unified data platform using batch (ETL) and real-time streaming solutions.
Design and implement efficient data models, schemas, and database structures (SQL / NoSQL).
Develop and implement data quality processes to ensure accuracy, consistency, and reliability.
Monitor, optimize, and troubleshoot data infrastructure to meet performance and SLA requirements.
Requirements:
5+ years of hands-on experience as a Data Engineer, building data systems from scratch in dynamic environments.
Bachelors degree in Computer Science, Engineering, or a related field (or equivalent practical experience).
Strong proficiency in Python and advanced SQL, with solid experience in data modeling.
Proven experience designing and building scalable data pipelines (batch and real-time), including streaming technologies such as Kafka.
Strong experience working with AWS, including services such as S3, Athena and DynamoDB.
Experience working with big data processing frameworks such as Spark, and columnar data formats (e.g., Parquet).
Hands-on experience with workflow orchestration tools such as Airflow.
Strong ownership and execution mindset, with excellent problem-solving skills and high attention to detail, and the ability to collaborate effectively and deliver in ambiguous, fast-paced environments.
Fluent in English.
Nice to have:

Experience with data platform technologies such as Databricks, Snowflake.
Experience building data platforms using modern lakehouse technologies (e.g., Iceberg).
This position is open to all candidates.
 
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30/09/2026
חברה חסויה
Location: Petah Tikva
Job Type: Full Time
We're looking for a Data Engineer to own our data architecture end-to-end. You'll design, build, and scale the pipelines that power every pricing decision we make - from raw ingestion through our data lake to the analytics and BI layers our customers rely on. This is a hands-on leadership role: you'll set technical direction, drive architectural decisions, and mentor a team of data engineers, while still writing code and owning delivery.
What You'll Do:
Architect and build large-scale batch and streaming ETL/ELT pipelines
Own data lake design, table modeling, and partitioning strategy across billion-row datasets
Drive query performance and cloud cost optimization across AWS and GCP
Establish data quality, observability, and reliability standards - freshness, correctness, and SLAs
Partner with backend, product, and data science teams to expose data through internal and customer-facing APIs
Our Stack
Spark / EMR Airflow BigQuery PostgreSQL & Aurora Kafka RabbitMQ Elasticsearch Go Python AWS GCP Kubernetes Terraform.
Requirements:
5+ years in data engineering, with real production experience at scale (terabytes+, billions of rows)
Deep SQL and strong distributed-processing experience (Spark or equivalent)
Strong Python and/or Go
Hands-on experience with cloud data warehouses (BigQuery, Snowflake, Redshift) and orchestration tooling
AI-first mindset - you actively work with AI coding tools (Claude Code, Cursor, Copilot) and LLM-based agents as part of your day-to-day, and look for opportunities to automate and accelerate engineering work with them
Experience building or supporting AI/LLM-driven data products - pipelines that feed models, agents, or ML systems
Product mindset: you care why the data is being used, not just that the job finished green
Nice to have: streaming architectures, cost/FinOps ownership, multi-region or multi-cloud systems, e-commerce or pricing domain experience, MCP servers or agentic tooling.
This position is open to all candidates.
 
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23/09/2026
Location: Petah Tikva
Job Type: Full Time
We seek an experienced Senior Staff Data Engineer to join our AI and Data Solutions unit and champion an AI-first strategy. You will spearhead the development of Data Lakehouse processes, model core product domains, and define data engineering best practices across the organization. Serving as a technical project lead, you will provide strong direction and collaborate with Data Science, Analytics, R&D, and IT teams to elevate onboarding workflows. This role demands a proactive approach to optimizing system capabilities and driving cross-functional data initiatives.
Key Responsibilities:
Own the design, implementation, and optimization of scalable Data Lakehouse and Data Warehouse architectures across diverse cloud ecosystems.
Spearhead the development of robust ETL/ELT pipelines and data ingestion processes utilizing SQL, Python, PySpark, and DBT.
Apply advanced data modelling techniques to structure complex data assets into optimized facts, dimensions, and partitions.
Partner with cross-functional leadership across data science, analytics, R&D, and IT to identify requirements and improve workflows.
Orchestrate complex data workflows combining tools like Airflow and DBT with advanced Gen-AI development workflows using CloudCode.
Define, document, and popularize data engineering best practices, design patterns, and data quality standards across the unit.
Evaluate and implement modern data technologies spanning vendor-specific and open-source landscapes including GCP, AWS, and Apache Iceberg.
Provide technical direction and hands-on guidance to ensure high-performance execution, reliable pipeline delivery, and proactive problem-solving.
Requirements:
Required Qualifications
5+ years of experience with advanced data modeling techniques and concepts (e.g., Facts, Dimensions, Partitions).
5+ years of experience designing and implementing end-to-end data ingestion and ETL processes within Data Lakehouse architectures.
5+ years of hands-on experience programming in SQL and Python, PySpark, Java, or Scala.
Demonstrated experience leading technical projects, driving stakeholder alignment, and navigating cross-functional dynamics.
Proven experience working within cloud environments (AWS or GCP), with a strong requirement for AWS.
Deep understanding of the modern data landscape and open-source tools (e.g., Iceberg, DBT, Airflow).
Proven capability in using and orchestrating Gen-AI workflows based on CloudCode and Cursor.
Preferred Qualifications:
Deep expertise in the AWS ecosystem, including Glue, Athena, SageMaker, and EMR.
Advanced experience with Data Warehouse technologies, especially Apache Iceberg or BigQuery.
Leadership or mentorship experience within a data engineering or analytics unit.
Background or domain knowledge in cybersecurity is a strong advantage.
Our
This position is open to all candidates.
 
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מודים לך שלקחת חלק בשיפור התוכן שלנו :)
Location: Petah Tikva
Job Type: Full Time
our company seeks an experienced Senior Staff Data Engineer to join our AI and Data Solutions unit and champion an AI-first strategy. You will spearhead the development of Data Lakehouse processes, model core product domains, and define data engineering best practices across the organization. Serving as a technical project lead, you will provide strong direction and collaborate with Data Science, Analytics, R&D, and IT teams to elevate onboarding workflows. This role demands a proactive approach to optimizing system capabilities and driving cross-functional data initiatives.
Key Responsibilities
Own the design, implementation, and optimization of scalable Data Lakehouse and Data Warehouse architectures across diverse cloud ecosystems.
Spearhead the development of robust ETL/ELT pipelines and data ingestion processes utilizing SQL, Python, PySpark, and DBT.
Apply advanced data modelling techniques to structure complex data assets into optimized facts, dimensions, and partitions.
Partner with cross-functional leadership across data science, analytics, R&D, and IT to identify requirements and improve workflows.
Orchestrate complex data workflows combining tools like Airflow and DBT with advanced Gen-AI development workflows using CloudCode.
Define, document, and popularize data engineering best practices, design patterns, and data quality standards across the unit.
Evaluate and implement modern data technologies spanning vendor-specific and open-source landscapes including GCP, AWS, and Apache Iceberg.
Provide technical direction and hands-on guidance to ensure high-performance execution, reliable pipeline delivery, and proactive problem-solving.
Requirements:
5+ years of experience with advanced data modeling techniques and concepts (e.g., Facts, Dimensions, Partitions).
5+ years of experience designing and implementing end-to-end data ingestion and ETL processes within Data Lakehouse architectures.
5+ years of hands-on experience programming in SQL and Python, PySpark, Java, or Scala.
Demonstrated experience leading technical projects, driving stakeholder alignment, and navigating cross-functional dynamics.
Proven experience working within cloud environments (AWS or GCP), with a strong requirement for AWS.
Deep understanding of the modern data landscape and open-source tools (e.g., Iceberg, DBT, Airflow).
Proven capability in using and orchestrating Gen-AI workflows based on CloudCode and Cursor.
Preferred Qualifications
Deep expertise in the AWS ecosystem, including Glue, Athena, SageMaker, and EMR.
Advanced experience with Data Warehouse technologies, especially Apache Iceberg or BigQuery.
Leadership or mentorship experience within a data engineering or analytics unit.
Background or domain knowledge in cybersecurity is a strong advantage.
This position is open to all candidates.
 
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תודה על שיתוף הפעולה
מודים לך שלקחת חלק בשיפור התוכן שלנו :)
24/09/2026
Location: Petah Tikva
Job Type: Full Time
We seek an experienced Senior Staff Data Engineer to join our AI and Data Solutions unit and champion an AI-first strategy. You will spearhead the development of Data Lakehouse processes, model core product domains, and define data engineering best practices across the organization. Serving as a technical project lead, you will provide strong direction and collaborate with Data Science, Analytics, R&D, and IT teams to elevate onboarding workflows. This role demands a proactive approach to optimizing system capabilities and driving cross-functional data initiatives.
Key Responsibilities:
Own the design, implementation, and optimization of scalable Data Lakehouse and Data Warehouse architectures across diverse cloud ecosystems.
Spearhead the development of robust ETL/ELT pipelines and data ingestion processes utilizing SQL, Python, PySpark, and DBT.
Apply advanced data modelling techniques to structure complex data assets into optimized facts, dimensions, and partitions.
Partner with cross-functional leadership across data science, analytics, R&D, and IT to identify requirements and improve workflows.
Orchestrate complex data workflows combining tools like Airflow and DBT with advanced Gen-AI development workflows using CloudCode.
Define, document, and popularize data engineering best practices, design patterns, and data quality standards across the unit.
Evaluate and implement modern data technologies spanning vendor-specific and open-source landscapes including GCP, AWS, and Apache Iceberg.
Provide technical direction and hands-on guidance to ensure high-performance execution, reliable pipeline delivery, and proactive problem-solving.
Requirements:
Required Qualifications:
5+ years of experience with advanced data modeling techniques and concepts (e.g., Facts, Dimensions, Partitions).
5+ years of experience designing and implementing end-to-end data ingestion and ETL processes within Data Lakehouse architectures.
5+ years of hands-on experience programming in SQL and Python, PySpark, Java, or Scala.
Demonstrated experience leading technical projects, driving stakeholder alignment, and navigating cross-functional dynamics.
Proven experience working within cloud environments (AWS or GCP), with a strong requirement for AWS.
Deep understanding of the modern data landscape and open-source tools (e.g., Iceberg, DBT, Airflow).
Proven capability in using and orchestrating Gen-AI workflows based on CloudCode and Cursor.
Preferred Qualifications:
Deep expertise in the AWS ecosystem, including Glue, Athena, SageMaker, and EMR.
Advanced experience with Data Warehouse technologies, especially Apache Iceberg or BigQuery.
Leadership or mentorship experience within a data engineering or analytics unit.
Background or domain knowledge in cybersecurity is a strong advantage.
This position is open to all candidates.
 
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חברה חסויה
Location: Petah Tikva
Job Type: Full Time
we are looking for a highly skilled Data Engineer to join our growing Data Analytics Department.
As a Data Engineer in a multi cloud company, you will build data-driven solutions for our customers using cutting-edge data tools and large-scale data on AWS\GCP\Azure.
Job Responsibilities:
Lead data solutions design and development for our various clients and projects.
Design the solution by understanding the needs, modeling the data, choosing the right tools and defining the interfaces/dashboards.
Develop Data Pipelines, Data Lakes, DWHs, AI\ML models, Dashboards and reports using advanced tools and leading technologies.
Requirements:
5+ years of relevant experience as Data Engineer - a must.
Experience with Python based data pipelines/ETLs and other ETL\ELT tools (such as Glue, Rivery, Data Factory, DBT).
High Proficiency in SQL - a must.
Experience designing and developing DWHs in the cloud - Redshift\Snowflake\BigQuery is a must.
Experience with BI & visualizations tools like Tableau\Quicksight\Power BI\Looker.
Knowledge and experience with AI\ML (working with tools like SageMaker\ Bedrock\ Q\ BigQuery ML\ Vertex AI\ Gemini) - big advantage.
Strong analytical and problem-solving skills with attention to details.
High self-learning skills
Fluent English.
This position is open to all candidates.
 
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