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Sr. Machine Learning Engineer IV

6-8 Years
Early Applicant
  • Posted 11 hours ago
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Job Description

Job Type: Full Time
Locations: Herndon VA - USA

Employment Type:
Full-time

Experience:
6+ Years

Required Skills:

Experience with

  • TensorFlow and PySpark.
  • Convolutional Neural Networks (CNN) and Natural Language Processing (NLP).
  • Logistic and Linear Regression Models.
  • K-Means clustering.
  • Spark, Hadoop, Hive, and Oozie.
  • Jenkins and Selenium.
  • Python, Java, and R.
  • AWS Cloud.
  • DB2, Oracle, Tableau, Qliksense, and Qlikview.

Master's degree with 6 years of experience or Bachelor's degree with 8 years of experience Majors: Computer Science, Data Science, or equivalent.

Responsibilities:

  • Responsible for end-to-end software and data architecture design for large-scale enterprise solutions, serving as a Subject Matter Expert (SME) for high-performance technology stacks including Python, PySpark, Hive, AWS, and GCP.
  • Act as the primary technical expert for evaluating emerging data technologies and architecting complex network health forecast models, telemetry options, and performance monitoring systems.
  • Provide technical leadership in feasibility studies for Network Management Software, ensuring infrastructure and data pipelines can scale to handle massive, multi-terabyte datasets across hybrid-cloud environments.
  • Supervise the team's development methodology, perform final code reviews, and manage commit workflows for high-volume repositories to maintain rigorous standards.
  • Architect and govern end-to-end AI/ML pipelines, ranging from automated data integrity checks and Exploratory Data Analysis (EDA) to advanced feature engineering and scalable model deployment.
  • Design predictive models utilizing Logistic and Linear Regression, K-means clustering, CNNs, and other leading algorithms to forecast customer satisfaction, network equipment faults, and financial claim damage.
  • Lead the migration and optimization of ML models from on-premise clusters to hyperscaler environments, including Google Cloud, ensuring performance benchmarks and model accuracy are maintained.
  • Implement Natural Language Processing (NLP) classifiers using TensorFlow and Jupyter Notebooks to synthesize unstructured data into actionable business intelligence.
  • Define enterprise data warehousing needs and design sophisticated data models and repository structures utilizing Oracle, DB2, and Hive to support the full system development life cycle.
  • Direct the design of complex data transformations and preprocessing frameworks that enable the automation of repeatable actions through models predicting system behavior in altered conditions.
  • Synthesize functional requirements into high-level technical specifications for large-scale data mining and predictive propensity modeling.
  • Guide teams on industry best practices for data lifecycle management, including high-fidelity test data acquisition and maintaining data integrity across integrated systems.
  • Design and develop specialized, enterprise-level scripts (Python, Unix Shell, SQL) for the administration of complex communication networks and event-based automated response systems.
  • Implement rapid-prototyping platforms using custom Python utilities for high-speed text classification, document comparison, and automated financial report validation.
  • Enable continuous integration and deployment (CI/CD) for data-driven applications by monitoring cloud-based deployments and optimizing application performance benchmarks.
  • Work on applications using: TensorFlow and PySpark Convolutional Neural Network (CNN) and Natural Language Processing (NLP) Logistic and Linear Regression Models K-Means clustering Spark, Hadoop, Hive, and Oozie Jenkins and Selenium Python, Java, and R AWS Cloud DB2, Oracle, Tableau, Qliksense, and Qlikview.
  • Other similar duties as assigned.

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About Company

Job ID: 153745037

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