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Databricks Feature Store


Inherent Technologies


Location

Princeton, NJ | United States


Job description

Position: Databricks Feature Store

Location: Princeton, NJ ***Day 1 Onsite***

Duration: 1 Years

Phone & Skype

Client: HCL

Immediate Interview

Skill Rating

Mandatory Skills

Hands on experience in Years

Last used -Year

Self-Rating (Scale 1-10)

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As a Data Engineer supporting Machine Learning (ML) initiatives, you will be responsible for using the Databricks Lakehouse Platform to complete advanced data engineering tasks. You will work closely with our data scientists and ML engineers to ensure that data is available, reliable, and optimized for their needs.

Key Responsibilities:

1. Cloud Data Architecture: Design and build robust data pipelines using Spark SQL and Python in both batch and incrementally processed paradigms orchestrated via Azure Data Factory.

2 . Feature Engineering (Mandatory) : Collaborate with data scientists to understand the features needed for ML models. Implement feature extraction and transformation logic in the data pipelines.

3. FeatureOps (Mandatory): Implement FeatureOps to manage the lifecycle of features including their discovery, validation, and serving for training and inference purposes.

4. Training Dataset Support: Work with data scientists to understand their requirements for training datasets. Ensure that these datasets are accurately prepared, cleaned, and made available in a timely manner.

5. Data Pipeline Automation: Automate the data pipelines using CI/CD approaches to ensure seamless deployment and updates. This includes automating tests, deployments, and monitoring of these pipelines.

6. Data Quality: Implement data quality frameworks and monitoring to ensure high data accuracy and reliability. Identify and resolve any data inconsistencies or anomalies.

7. Collaboration: Work closely with data scientists and ML engineers to understand their data needs. Provide them with the necessary data in the right format to facilitate their work.

8. Optimization: Continually optimize pipelines and databases for improved performance and efficiency. This includes implementing real-time processing where necessary.

9. Data Governance: Ensure compliance with data privacy regulations and best practices. Implement appropriate access controls and security measures.

10. Data APIs

Qualifications:

- Experience supporting machine learning projects.

- Familiarity with ML platforms (e.g., TensorFlow, PyTorch).

- Experience with cloud platforms (e.g., Azure, AWS).

- Bachelor's degree in Computer Science, Engineering, or a related field.

- Proven experience as a Data Engineer or in a similar role.

- Experience with big data tools (e.g., Hadoop, Spark) and databases (e.g., SQL, NoSQL).

- Knowledge of machine learning concepts and workflows.

- Strong programming skills (e.g., Python, Java).

- Excellent problem-solving abilities and attention to detail.

- Strong communication skills to effectively collaborate with other teams


Job tags

Immediate start


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