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Required : • Deep hands-on experience with AWS services SageMaker, S3, EMR, Glue, Lambda, Redshift, Athena, Step Functions, Lake Formation, and IAM security best practices. • Proven experience ...

Python/Java, Spark, Airflow, Databricks * ETL architecture, Snowflake, S3, BigQuery, Redshift * Infrastructure-as-code and cloud data platforms (AWS, Azure) Why Candidates Choose SynergisticIT (and ...

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AWS Cloud Data Lake Lead

Diverse Lynx

Cambridge, VT • On-site

Full-time

Re-posted 18 days ago


Job description

Job Summary:
Diverse Lynx is seeking an AWS Cloud Data Lake Lead to manage a team of data scientists and ML engineers. The role involves defining data science operations strategy, architecting scalable ML pipelines, and overseeing AWS Data Lake architectures.
Responsibilities:
• Lead and manage a team of 6 data scientists, ML engineers, and analytics professionals across onshore/offshore locations, providing technical mentorship and career guidance.
• Define and drive the data science operations strategy, roadmap, and best practices aligned with business objectives.
• Partner with senior business stakeholders, product owners, and cross-functional teams to identify high-impact AI/ML opportunities and translate them into actionable project plans.
• Establish and govern standards for model development, deployment, monitoring, and responsible AI adoption across the organization.
• Architect and oversee scalable ML pipelines for data ingestion, feature engineering, model training, validation, and inference on AWS cloud and Databricks.
• Design and implement AWS Data Lake architectures and big data processing solutions for structured and unstructured data at petabyte scale using Spark, Databricks, and AWS-native services (S3, Lake Formation, EMR, Glue, SageMaker, Redshift, Athena).
• Lead the deployment of production ML systems including real-time inference APIs, batch prediction pipelines, and model-as-a-service architectures.
• Drive MLOps maturity CICD for ML, automated model retraining, drift detection, AB testing, and performance monitoring.
Qualifications:
Required:
• Deep hands-on experience with AWS services SageMaker, S3, EMR, Glue, Lambda, Redshift, Athena, Step Functions, Lake Formation, and IAM security best practices.
• Proven experience designing and managing AWS Data Lake architectures.
• Proficiency in Databricks for large-scale data engineering, ML model development, MLflow for experiment tracking, and Unity Catalog for governance.
• Strong experience with Apache Spark (PySpark/Scala), distributed computing, and processing large-scale structured/unstructured datasets.
• Solid expertise in ML algorithms, feature engineering, model evaluation, and frameworks such as scikit-learn, XGBoost, TensorFlow, or PyTorch.
• Proven experience with end-to-end ML lifecycle model deployment, monitoring, retraining, CICD pipelines, containerization (Docker), and orchestration (Kubernetes/ECS).
• Expert-level proficiency in Python for end-to-end data science and ML workflows.
• Advanced SQL for data analysis and pipeline development.
• Proficiency with Git, branching strategies, and code review practices.
• Lead and manage a team of 6 data scientists, ML engineers, and analytics professionals across onshore/offshore locations, providing technical mentorship and career guidance.
• Define and drive the data science operations strategy, roadmap, and best practices aligned with business objectives.
• Partner with senior business stakeholders, product owners, and cross-functional teams to identify high-impact AI/ML opportunities and translate them into actionable project plans.
• Establish and govern standards for model development, deployment, monitoring, and responsible AI adoption across the organization.
• Architect and oversee scalable ML pipelines for data ingestion, feature engineering, model training, validation, and inference on AWS cloud and Databricks.
• Design and implement AWS Data Lake architectures and big data processing solutions for structured and unstructured data at petabyte scale using Spark, Databricks, and AWS-native services (S3, Lake Formation, EMR, Glue, SageMaker, Redshift, Athena).
• Lead the deployment of production ML systems including real-time inference APIs, batch prediction pipelines, and model-as-a-service architectures.
• Drive MLOps maturity CICD for ML, automated model retraining, drift detection, AB testing, and performance monitoring.
Company:
Diverselynx IT Consulting Services Founded in 2002, the company is headquartered in Princeton, USA, with a team of 1001-5000 employees. The company is currently Late Stage.

Diverse Lynx logo

About Diverse Lynx

Sourced by ZipRecruiter

Diverse Lynx, based in Princeton, NJ, US, is a reputable company in the Information Technology sector. The firm, as reflected through its website diverselynx.com, specializes in delivering comprehensive IT solutions. These solutions range from IT consulting to robust digital transformation strategies, IT staffing, and full-time placements services. The company was established in 2008, and it prides itself on providing simplified, efficient technology solutions designed to meet the unique needs of each client.

Industry

It services

Company size

51 - 200 Employees

Headquarters location

Princeton, NJ, US

Year founded

2002

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