Job Description
We are looking for a dynamic and innovative Full Stack Data Scientist with 3+ years of experience who excels in end-to-end data science solutions. The ideal candidate is a tech-savvy professional passionate about leveraging data to solve complex problems, develop predictive models, and drive business impact in the MarTech domain.
Key Responsibilities
- Data Engineering & Preprocessing
- Collect, clean, and preprocess structured and unstructured data from various sources.
- Perform advanced feature engineering, outlier detection, and data transformation.
- Collaborate with data engineers to ensure seamless data pipeline development.
- Machine Learning Model Development
- Design, train, and validate machine learning models (supervised, unsupervised, deep learning).
- Optimize models for business KPIs such as accuracy, recall, and precision.
- Innovate with advanced algorithms tailored to marketing technologies.
- Full Stack Development
- Build production-grade APIs for model deployment using frameworks like Flask, FastAPI, or Django.
- Develop scalable and modular code for data processing and ML integration.
- Deployment & Operationalization
- Deploy models on cloud platforms (AWS, Azure, or GCP) using tools like Docker and Kubernetes.
- Implement continuous monitoring, logging, and retraining strategies for deployed models.
- Insight Visualization & Communication
- Create visually compelling dashboards and reports using Tableau, Power BI, or similar tools.
- Present insights and actionable recommendations to stakeholders effectively.
- Collaboration & Teamwork
- Work closely with marketing analysts, product managers, and engineering teams to solve business challenges.
- Foster a collaborative environment that encourages innovation and shared learning.
- Continuous Learning & Innovation
- Stay updated on the latest trends in AI/ML, especially in marketing automation and analytics.
- Identify new opportunities for leveraging data science in MarTech solutions.
Educational Background
- Bachelors or Masters degree in Computer Science, Data Science, Statistics, Mathematics, or a related field.
- Programming Languages: Python (must-have), R, or Julia; familiarity with Java or C++ is a plus.
- ML Frameworks: TensorFlow, PyTorch, Scikit-learn, or XGBoost.
- Big Data Tools: Spark, Hadoop, or Kafka.
- Cloud Platforms: AWS, Azure, or GCP for model deployment and data pipelines.
- Databases: Expertise in SQL and NoSQL (e.g., MongoDB, Cassandra).
- Visualization: Mastery of Tableau, Power BI, Plotly, or D3.js.
- Version Control: Proficiency with Git for collaborative coding.
Looking to get Placed? Try our Placement Guarantee Plan
- 3+ years of hands-on experience in data science, machine learning, and software engineering.
- Proven expertise in deploying machine learning models in production environments.
- Experience in handling large datasets and implementing big data technologies.
- Strong problem-solving and analytical thinking.
- Excellent communication and storytelling skills for technical and non-technical audiences.
- Ability to work collaboratively in diverse and cross-functional teams.
- Experience with Natural Language Processing (NLP) and Computer Vision (CV).
- Familiarity with CI/CD pipelines and DevOps for ML workflows.
- Exposure to Agile project management methodologies.
- Opportunity to work on innovative projects with cutting-edge technologies.
- Collaborative and inclusive work environment that values creativity and growth.
Skills
Big DataPythonData ScienceDeep LearningData ProcessingMachine LearningVisualizationAi/mlData ScientistAnalyticsDjangoFlaskAiMlSqlIf an employer asks you to pay any kind of fee, please notify us immediately. Jobaaj does not charge any fee from the applicants and we do not allow other companies also to do so.
Important dates & deadlines?
Application Deadline
01 Jul 26, 03:05 PM IST
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