Senior Data Analyst with AI/ML and Databricks

carytek United State
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AI Summary

Design and maintain data pipelines using Azure Databricks and machine learning algorithms. Develop predictive models and perform data mining to uncover insights. Collaborate with cross-functional teams to drive business outcomes.

Key Highlights
Design and maintain data pipelines
Develop predictive models
Collaborate with cross-functional teams
Key Responsibilities
Design, develop, and optimize machine learning models (forecasting, classification, clustering)
Apply data mining techniques to uncover patterns and insights in large datasets
Perform feature engineering, model validation, and performance tuning
Explore and deploy modern AI and ML approaches to enhance automation and analytics
Prepare structured and unstructured data for modeling and advanced analysis
Develop scripts and tools for data cleansing, validation, and enrichment
Collaborate with Data Engineering to maintain efficient data pipelines
Identify data quality issues and propose remediation
Conduct deep-dive analyses to identify trends and improvement opportunities
Communicate complex findings in clear, concise ways to technical and non-technical stakeholders
Support the development of dashboards, metrics, and analytical solutions
Work with architects, engineers, and analysts to define analytical requirements
Contribute to conceptual data model design and workflow optimization
Promote best practices in machine learning, analytics, and data governance
Technical Skills Required
Pyspark Python pandas SQL Azure Databricks Google Cloud scikit-learn pandas NumPy GenAI large language models Natural Language Processing (NLP) A/B Testing
Benefits & Perks
$55 On W2
Hybrid 3 days onsite and 2 day Remote
Onsite Interview (Mandatory)
Nice to Have
Knowledge of statistical methods and experimental design

Job Description


Position : Data Analyst with AI/ML and databricks

Location : New York City (no relocation candidates)

Work Visa : H4 EAD. Green Card EAD. GC, US Citizen Only 

Pay: $55 On W2

Work Mode : Hybrid 3 days onsite and 2 day Remote

Interview : Onsite Interview (Mandatory )


JOB SUMMARY

Designing and maintaining data

  • Azure Databricks required & ML/AI

 

JOB DESCRIPTION

  • Bachelor’s or Master’s degree in Computer Science, Data Science, Machine Learning, Statistics, Mathematics, or related field.
  • Strong experience in machine learning algorithms, predictive modeling, and data mining.
  • Proficiency in PysparkPython pandas (required) for data science workloads.
  • Strong SQL (required) knowledge and experience with relational databases.
  • Minimum 3 years of experience with data visualization tools such as Power BI, Dax Queries, and best practices.
  • Experience with Azure DatabricksGoogle Cloud, and modern data science libraries (e.g., scikit-learn, pandas, NumPy).
  • Experience with GenAI and large language models.
  • Ability to interpret complex datasets and produce actionable insights.
  • Must know how to analyze the root cause of dashboard errors.
  • Have experience in ML Ops and have strong coding background.
  • Have experience with Natural Language Processing (NLP).
  • Knowledge or experience with A/B Testing.
  • Working knowledge of designing, training, and implementing machine learning models.
  • Familiarity with cloud-based infrastructure
  • Excellent communication and problem-solving skills.
  • 7 or more years of experience in data science and machine learning engineering. 

Additional Skills (Skills that are a plus, but not required)

  • Knowledge of statistical methods and experimental design.

Responsibilities

  • Key Responsibilities

Advanced Analytics & Machine Learning

  • Design, develop, and optimize machine learning models (forecasting, classification, clustering).
  • Apply data mining techniques to uncover patterns and insights in large datasets.
  • Perform feature engineering, model validation, and performance tuning.
  • Explore and deploy modern AI and ML approaches to enhance automation and analytics.

Data Preparation & Quality

  • Prepare structured and unstructured data for modeling and advanced analysis.
  • Develop scripts and tools for data cleansing, validation, and enrichment.
  • Collaborate with Data Engineering to maintain efficient data pipelines.
  • Identify data quality issues and propose remediation.

Analytics, Insights & Reporting

  • Conduct deep-dive analyses to identify trends and improvement opportunities.
  • Communicate complex findings in clear, concise ways to technical and non-technical stakeholders.
  • Support the development of dashboards, metrics, and analytical solutions.

Cross-Team Collaboration

  • Work with architects, engineers, and analysts to define analytical requirements.
  • Contribute to conceptual data model design and workflow optimization.
  • Promote best practices in machine learning, analytics, and data governance.



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