Machine Learning Engineer Job at Akaasa Technologies, New York, NY

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  • Akaasa Technologies
  • New York, NY

Job Description

Utility clients Preffered

Need Databricks Engineer Associate Certification OR can obtain it once they start project. PySpark, MLops, AI a MUST!

Must Have

  • Applied Machine Learning
  • Azure Databricks
  • Big Data Analytics
  • Databricks Certified Data Engineer Associate
  • Data Structures
  • google cloud certified machine learning engineer
  • Machine Learning Operations
  • Pandas Python Library
  • PySpark
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 Pyspark , Python 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 Databricks , Google 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.

Job Responsibilities

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 Pyspark , Python 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 Databricks , Google 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.

Job Tags

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