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MLOps Engineer - Remote (New Jersey)

Tiger AnalyticsRemote — New Jersey, United States
Remote Full-time

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Experience Level

Experience

Qualifications

Qualifications:A Bachelor's degree or higher in Computer Science or a related field, alongside 5+ years of relevant work experience. Proficient in collaborating with Data Engineers and Data Scientists to construct data and model pipelines while conducting machine learning tests and experiments. Hands-on experience with AWS, particularly SageMaker (including ProcessingJobs, TrainingModels, EndPoints). Familiarity with Lambda, CloudFormation, Terraform, Apache Airflow, Astronomer, and Docker. Understanding of traditional ML models. Proficiency in Python, Spark, Hadoop, and Docker, with a strong emphasis on best coding practices within a continuous integration environment, model evaluation, and experimental design. Knowledge of ML frameworks including Scikit-learn, TensorFlow, and Keras. Experience with Pandas, Scikit-learn, NumPy, and SciPy. Additional Skills:Familiarity with Database/Data Engineering. Experience with Oracle, Spark, Hadoop, Athena, APIs, FastAPI, Flask, and REST. Knowledge of MLflow, Airflow, and Kubernetes. Experience with cloud environments and familiarity with AWS Services such as Service Catalog, SNS, and SES.

About the job

Tiger Analytics is on the lookout for skilled Machine Learning Engineers to become a part of our rapidly expanding advanced analytics consulting firm. Our team members possess profound knowledge in Machine Learning, Data Science, and Artificial Intelligence. We take pride in being a trusted analytics partner for numerous Fortune 500 companies, helping them extract business value from data. Our leadership and business impact have been acknowledged by renowned market research firms such as Forrester and Gartner.

As we strive to assemble the finest global analytics consulting team, we seek exceptional talent to join us. In this role, you will take charge of:

  • Acting as an ML Engineer with 5-7 years of IT experience.
  • Creating and managing pipeline training models, including building, deploying, testing, and monitoring using AWS SageMaker, AWS CloudFormation, AWS CodePipeline, and Lambda.
  • Designing Airflow DAGs to facilitate training and scoring pipelines.
  • Establishing a robust testing framework using Pytest.
  • Implementing a monitoring solution using a custom approach with Lambda and Dash.
  • Developing Data Quality solutions, potentially utilizing Great Expectations.

About Tiger Analytics

At Tiger Analytics, we are committed to excellence and innovation in the field of analytics. Our team is made up of dedicated professionals who are passionate about leveraging data to drive business success. We are recognized for our contributions to the analytics community and are proud to serve a diverse range of clients, including many of the world's leading companies.

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