Databricks Unified Data Analytics Platform Engineer- Cebu

Accenture in the Philippines

Cebu City

On-site

PHP 1,200,000 - 1,800,000

Full time

27 hours ago
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Job summary

Accenture in the Philippines is seeking a data engineer to design, develop, and maintain scalable data solutions. You will build ETL/ELT pipelines with Databricks, Delta Lake, Auto Loader, and DLT, using Python and PySpark to transform and validate data across cloud platforms (AWS/GCP/Azure).

You will implement data governance with Unity Catalog, create modular dbx functions, and enable secure data access across domains while integrating BI tools like Power BI, Tableau, or Looker.

Qualifications

  • Design, develop and maintain data solutions for data generation, collection, and processing.
  • Create data pipelines, ensure data quality, and implement ETL processes to migrate and deploy data across systems.

Responsibilities

  • Develop high-quality, scalable ETL/ELT pipelines using Databricks technologies including Delta Lake, Auto Loader, and DLT.
  • Excellent programming and debugging skills in Python.
  • Strong hands on experience with PySpark to build efficient data transformation and validation logic.
  • Must be proficient in at least one cloud platform: AWS, GCP, or Azure.
  • Create modular dbx functions for transformation, PII masking, and validation logic — reusable across DLT and notebook pipelines.
  • Implement ingestion patterns using Auto Loader with checkpointing and schema evolution for structured and semi-structured data.
  • Build secure and observable DLT pipelines with DLT Expectations, supporting Bronze/Silver/Gold medallion layering.
  • Configure Unity Catalog: set up catalogs, schemas, user/group access, enable audit logging, and define masking for PII fields.
  • Enable secure data access across domains and workspaces via Unity Catalog External Locations, Volumes, and lineage tracking.
  • Access and utilize data assets from the Databricks Marketplace to support enrichment, model training, or benchmarking.
  • Collaborate with data sharing stakeholders to implement Delta Sharing — both internally and externally.
  • Integrate Power BI/Tableau/Looker with Databricks using optimized connectors (ODBC/JDBC) and Unity Catalog security controls.
  • Build stakeholder-facing SQL Dashboards within Databricks to monitor KPIs, data pipeline health, and operational SLAs.
  • Prepare GenAI-compatible datasets: manage vector embeddings, index with Databricks Vector Search, and use Feature Store with MLflow.
  • Package and deploy pipelines using Databricks Asset Bundles through CI/CD pipelines in GitHub or GitLab.
  • Troubleshoot, tune, and optimize jobs using Photon engine and serverless compute, ensuring cost efficiency and SLA reliability.
  • Experience with cloud-based services relevant to data engineering, data storage, data processing, data warehousing, real-time streaming, and serverless computing.
  • Hands on Experience in applying Performance optimization techniques
  • Understanding data modeling and data warehousing principles is essential.

Skills

Python
PySpark
Databricks
Delta Lake
Auto Loader
DLT
Unity Catalog
SQL
Cloud (AWS/GCP/Azure)
CI/CD
GitHub
GitLab
Power BI
Tableau
Looker
Data Warehousing
Delta Sharing
Databricks Asset Bundles
Photon Engine
Serverless Compute
Performance Optimization

Tools

Apache Airflow
dbt
Informatica
Talend
Matillion
Fivetran
Spark
Hadoop
Hive
Kafka

Job description

Job Description:

Design, develop and maintain data solutions for data generation, collection, and processing. Create data pipelines, ensure data quality, and implement ETL (extract, transform and load) processes to migrate and deploy data across systems.

Responsibilities:
  • Develop high-quality, scalable ETL/ELT pipelines using Databricks technologies including Delta Lake, Auto Loader, and DLT.
  • Excellent programming and debugging skills in Python.
  • Strong hands on experience with PySpark to build efficient data transformation and validation logic.
  • Must be proficient in at least one cloud platform: AWS, GCP, or Azure.
  • Create modular dbx functions for transformation, PII masking, and validation logic — reusable across DLT and notebook pipelines.
  • Implement ingestion patterns using Auto Loader with checkpointing and schema evolution for structured and semi-structured data.
  • Build secure and observable DLT pipelines with DLT Expectations, supporting Bronze/Silver/Gold medallion layering.
  • Configure Unity Catalog: set up catalogs, schemas, user/group access, enable audit logging, and define masking for PII fields.
  • Enable secure data access across domains and workspaces via Unity Catalog External Locations, Volumes, and lineage tracking.
  • Access and utilize data assets from the Databricks Marketplace to support enrichment, model training, or benchmarking.
  • Collaborate with data sharing stakeholders to implement Delta Sharing — both internally and externally.
  • Integrate Power BI/Tableau/Looker with Databricks using optimized connectors (ODBC/JDBC) and Unity Catalog security controls.
  • Build stakeholder-facing SQL Dashboards within Databricks to monitor KPIs, data pipeline health, and operational SLAs.
  • Prepare GenAI-compatible datasets: manage vector embeddings, index with Databricks Vector Search, and use Feature Store with MLflow.
  • Package and deploy pipelines using Databricks Asset Bundles through CI/CD pipelines in GitHub or GitLab.
  • Troubleshoot, tune, and optimize jobs using Photon engine and serverless compute, ensuring cost efficiency and SLA reliability.
  • Experience with cloud-based services relevant to data engineering, data storage, data processing, data warehousing, real-time streaming, and serverless computing.
  • Hands on Experience in applying Performance optimization techniques
  • Understanding data modeling and data warehousing principles is essential.
Good to Have:
  • Certifications: Databricks Certified Professional or similar certifications.
  • Machine Learning: Knowledge of machine learning concepts and experience with popular ML libraries.
  • Knowledge of big data processing (e.g., Spark, Hadoop, Hive,Kafka)
  • Data Orchestration: Apache Airflow.
  • Knowledge of CI/CD pipelines and DevOps practices in a cloud environment.
  • Experience with ETL tools like Informatica, Talend, Matillion, or Fivetran.
  • Familiarity with dbt (Data Build Tool)
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