Why This Role Stands Out
This role offers significant growth potential where you will design and implement cutting-edge Databricks Lakehouse architectures, directly impacting enterprise customers and mentoring engineering teams. You'll thrive here if you possess deep technical expertise in Databricks, cloud ecosystems, and automation, driving innovative data and AI solutions. Apply now to lead technical delivery and shape the future of data at Unison Group.
Quick Overview
Seniority
Mid Senior
Employment type
Full Time
Work mode
On Site
Location
California City, California, United States
Posted
3 weeks ago
GCPMicroservicesSQLScalaAWSETLMLOpsMLflowMachine LearningNLPScikit-learnSnowflakeSplunkAzureDatabricksDeep LearningGenerative AIGitLLMPrometheusPyTorchPythonTensorFlowTerraformUnity
Job Description
- We’re seeking a hands-on experience in Databricks with deep technical expertise in building and optimizing Lakehouse-based data and AI solutions.
- In this role, you’ll design, develop, and operationalize Delta Lakehouse architectures using Databricks, driving real-world outcomes for enterprise customers. You’ll take ownership of implementation tasks, lead technical delivery, and mentor engineering teams in best practices across data engineering, governance, and AI.
Key Responsibilities
- Design and implement scalable data pipelines using Delta Live Tables (DLT), Spark SQL, Python, or Scala.
- Optimize ETL, streaming, and ML workloads for performance, cost efficiency, and reliability.
- Administer and configure Databricks Workspaces, Unity Catalog, and cluster policies for secure, governed environments.
- Automate infrastructure and deployments using Terraform, Git, and CI/CD pipelines.
- Implement observability, cost optimization, and monitoring frameworks using tools like Splunk, Prometheus, or CloudWatch.
- Collaborate with customers to build AI and LLM solutions leveraging MLflow, DBRX, and Mosaic AI.
Work Location: Singapore
Required Skills & Experience
- Strong hands-on experience with Databricks, including workspace setup, notebooks, clusters, and job orchestration.
- Expertise in Delta Lake, DLT, Unity Catalog, and SQL Warehouses.
- Proficiency in Python or Scala for data engineering and ML workflows.
- Strong understanding of AWS, Azure, or GCP cloud ecosystems.
- Experience with Terraform automation, DevOps, and MLOps practices.
- Familiarity with monitoring and governance frameworks for large-scale data platforms.
Good to Have Skills:
- Machine Learning, Deep Learning, NLP, or Generative AI
- Designing distributed and scalable systems
- API-first and microservices architecture
- Python, ML frameworks (TensorFlow, PyTorch, Scikit-learn)
- MLOps tools (MLflow, Kubeflow, SageMaker, etc.)
- Data platforms (Spark, Databricks, Snowflake)
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