who is a versatile professional who uses analytical, statistical, and programming skills to collect, analyze, and interpret large datasets to help organizations make data-driven decisions.
Job Responsibilities:
Work closely with a team of scientists and researchers to concept and iterate on software development
Develop and deploy data science prototypes, with a focus on bringing machine learning models into production.
Working with Big Data Tools: Use technologies like Hadoop, Spark, and distributed databases to handle large-scale datasets.
Work with cloud-based data platforms like AWS, Google Cloud, or Azure for storage, computing, and analysis.
Design and implement scalable and high-performance machine learning models, with a focus on troubleshooting performance and accuracy issues
Gather structured and unstructured data from various sources such as databases, web services, APIs, and data streams.
Build data cleaning and augmentation pipelines for both machine learning and deep learning model-based projects
Automate processes and workflows for efficient delivery of data science products via scripting and open source tools.
Job Requirements:
Degree in Computer Science, Computer Engineering or equivalent
0-2 years of relevant experience
Experience in real-world data science projects, internships, hackathons, and personal projects
Expertise in Python programming and using libraries for data processing, visualization, and model development, including pandas, numpy, scikit-learn,matplotlib, and seaborn
Knowledgeable in API concepts and libraries, and experienced in utilizing them for testing and deployment, leveraging frameworks such as Flask, Django, or FastAPI
* Familiar with databases (e.g. NoSQL, PostgreSQL, MongoDB) and SQL for data storage and retrieval
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