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Homeoffice Data Scientist at None

None · Peachtree City, United States Of America · Remote

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We are seeking a motivated Data Scientist with 1-3 years of experience to develop, optimize, and deploy machine learning models and data products. You will leverage ML Ops best practices to build scalable, production-ready solutions that address complex business challenges. This role involves close collaboration with cross-functional teams to deliver actionable insights and data-driven solutions.

Join a dynamic team that values innovation, collaboration, and continuous learning as we tackle business problems using advanced data science and machine learning techniques.

Key Responsibilities

  • Develop and optimize machine learning models using a variety of techniques, including large language models, neural networks, tree-based algorithms, and statistical methods.
  • Analyze complex datasets (structured, semi-structured, and unstructured) by applying feature engineering and statistical techniques to extract actionable insights for model development.
  • Design and maintain end-to-end machine learning pipelines emphasizing modularity, reproducibility, and efficient retraining.
  • Prototyping and developing domain-specific AI agents that can perform tasks such as information gathering, data extraction, and intelligent actions.
  • Deploy models into production environments using ML Ops practices such as version control, logging, monitoring, and lifecycle management to ensure scalability, reliability, and performance.
  • Perform data exploration, preprocessing, and visualization to uncover trends and clearly communicate findings to both technical and non-technical stakeholders.
  • Collaborate with data engineers, software developers, and product owners to integrate machine learning solutions into business applications and cloud platforms.
  • Research and experiment with emerging algorithms, frameworks, and tools to enhance model accuracy, efficiency, and scalability.
  • Maintain and improve existing machine learning models and analytics solutions to adapt to evolving business needs.
  • Contribute to team growth by participating in code reviews, maintaining documentation, and fostering a collaborative, data-driven culture.

Qualifications

  • Bachelor’s or Master’s degree in Data Science, Computer Science, Statistics, Mathematics, Engineering, or a related quantitative field.
  • 1-3 years of applied data science and machine learning.
  • Strong proficiency in Python, including experience with libraries such as scikit-learn, TensorFlow, PyTorch, XGBoost, and HuggingFace. Experience with languages such as R, JavaScript, Java, etc. is a plus.
  • Machine Learning Expertise:
    • Hands-on experience with supervised and unsupervised learning techniques, including regression, classification, clustering, decision trees, and neural networks.
    • Proficiency in model optimization, feature engineering, hyperparameter tuning, and evaluation metrics to ensure robust and accurate results.
    • Understanding of LLM architectures, fine-tuning, prompt engineering, and context retrieval.
  • Expertise in cleaning, transforming, and analyzing large datasets (structured and unstructured) to enable meaningful insights.
  • Practical experience with ML Ops practices to streamline and scale machine learning workflows, including model deployment and monitoring.
  • Familiarity with cloud platforms and tools for data processing, model training, deployment, and monitoring (e.g., Azure ML, MLflow).
  • Strong ability to collaborate with cross-functional teams and clearly present complex technical concepts to technical and non-technical audiences.

Additional Competencies

  • Self-Directed
  • Problem Solving
  • Interpersonal Skills
  • Strong Written and Verbal Communication Skills
  • Accuracy/Attention to Detail
  • Adaptability
  • Dependability
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