Data Science Analyst (Senior) with skills Data Science, AI/ML Development, Data Science for location Noida, India
ROLES & RESPONSIBILITIES

About the Role

The Data Science department plays a pivotal role in our company, generating value to client by developing algorithms and analytical production-grade solutions. We leverage advanced techniques and algorithms to provide maximum value from data in all shapes and sizes (such as classification models, NLP, anomaly detection, graph theory, deep learning, and more). As a Data Scientist, you will assume the classic data-science role of an end-to-end project development and implementation practitioner. Being part of the team requires a mix of hard quantitative and analytical skills, solid background in statistical modeling and machine learning, a technical data-savvy nature, along with a passion for problem-solving and a desire to drive data-driven decision-making.

What You'll Be Doing

·         Data Exploration and Preprocessing: Collect, clean, and transform large, complex data sets from various sources to ensure data quality and integrity for analysis

·         Statistical Analysis and Modeling: Apply statistical methods and mathematical models to identify patterns, trends, and relationships in data sets, and develop predictive models

·         Machine Learning: Develop and implement machine learning algorithms, such as classification, regression, clustering, and deep learning, to solve business problems and improve processes

·         Feature Engineering: Extract relevant features from structured and unstructured data sources, and design and engineer new features to enhance model performance

·         Model Development and Evaluation: Build, train, and optimize machine learning models using state-of-the-art techniques, and evaluate model performance using appropriate metrics

·         Data Visualization: Present complex analysis results in a clear and concise manner using data visualization techniques, and communicate insights to stakeholders effectively

·         Collaborative Problem-Solving: Collaborate with cross-functional teams, including product managers, data engineers, software developers, and business stakeholders to identify data-driven solutions and implement them in production environments

·         Research and Innovation: Stay up to date with the latest advancements in data science, machine learning, and related fields, and proactively explore new approaches to enhance the company's analytical capabilities

Qualifications

·         B.Sc (M.Sc is a plus) in Computer Science, Mathematics, Statistics, or a related field

·         3+ years of proven experience designing and implementing machine learning algorithms and successfully deploying them to production.

·         Strong understanding and practical experience with various machine learning algorithms.

·         Proficiency in Python, Experience with SQL and data manipulation tools (e.g., Pandas, NumPy) to extract, clean, and transform data for analysis

·         Solid foundation in statistical concepts and techniques, including hypothesis testing, regression analysis, time series analysis, and experimental design

·         Strong analytical and critical thinking skills to approach business problems, formulate hypotheses, and translate them into actionable solutions

·         Proficiency in data visualization libraries, to create meaningful visual representations of complex data

·         Excellent written and verbal communication skills to present complex findings and technical concepts to both technical and non-technical stakeholders

·         Demonstrated ability to work effectively in cross-functional teams, collaborate with colleagues, and contribute to a positive work environment

Advantages:

·         Experience in the fraud domain

·         Experience with Airflow, CircleCI, PySpark, Docker and K8S

Senior Data Scientist

 

About the Role

The Data Science department plays a pivotal role in our company, generating value to client by developing algorithms and analytical production-grade solutions. We leverage advanced techniques and algorithms to provide maximum value from data in all shapes and sizes (such as classification models, NLP, anomaly detection, graph theory, deep learning, and more). As a Data Scientist, you will assume the classic data-science role of an end-to-end project development and implementation practitioner. Being part of the team requires a mix of hard quantitative and analytical skills, solid background in statistical modeling and machine learning, a technical data-savvy nature, along with a passion for problem-solving and a desire to drive data-driven decision-making.

What You'll Be Doing

·         Data Exploration and Preprocessing: Collect, clean, and transform large, complex data sets from various sources to ensure data quality and integrity for analysis

·         Statistical Analysis and Modeling: Apply statistical methods and mathematical models to identify patterns, trends, and relationships in data sets, and develop predictive models

·         Machine Learning: Develop and implement machine learning algorithms, such as classification, regression, clustering, and deep learning, to solve business problems and improve processes

·         Feature Engineering: Extract relevant features from structured and unstructured data sources, and design and engineer new features to enhance model performance

·         Model Development and Evaluation: Build, train, and optimize machine learning models using state-of-the-art techniques, and evaluate model performance using appropriate metrics

·         Data Visualization: Present complex analysis results in a clear and concise manner using data visualization techniques, and communicate insights to stakeholders effectively

·         Collaborative Problem-Solving: Collaborate with cross-functional teams, including product managers, data engineers, software developers, and business stakeholders to identify data-driven solutions and implement them in production environments

·         Research and Innovation: Stay up to date with the latest advancements in data science, machine learning, and related fields, and proactively explore new approaches to enhance the company's analytical capabilities

Qualifications

·         B.Sc (M.Sc is a plus) in Computer Science, Mathematics, Statistics, or a related field

·         5+ years of proven experience designing and implementing machine learning algorithms and successfully deploying them to production.

·         Strong understanding and practical experience with various machine learning algorithms.

·         Proficiency in Python, Experience with SQL and data manipulation tools (e.g., Pandas, NumPy) to extract, clean, and transform data for analysis

·         Solid foundation in statistical concepts and techniques, including hypothesis testing, regression analysis, time series analysis, and experimental design

·         Strong analytical and critical thinking skills to approach business problems, formulate hypotheses, and translate them into actionable solutions

·         Proficiency in data visualization libraries, to create meaningful visual representations of complex data

·         Excellent written and verbal communication skills to present complex findings and technical concepts to both technical and non-technical stakeholders

·         Demonstrated ability to work effectively in cross-functional teams, collaborate with colleagues, and contribute to a positive work environment

Advantages:

·         Experience in the fraud domain

·         Experience with Airflow, CircleCI, PySpark, Docker and K8S

Data Scientist- Autonomous

 

About Us

Empowers businesses to unleash ecommerce growth by taking risk off the table. Many of the world’s biggest brands and publicly traded companies selling online rely on us for guaranteed protection against chargebacks, to fight fraud and policy abuse at scale, and to improve customer retention. Developed and managed by the largest team of ecommerce risk analysts, data scientists and researchers, AI-powered fraud and risk intelligence platform analyzes the individual behind each interaction to provide real-time decisions and robust identity-based insights. We are proud to work with incredible companies in virtually all industries including Wayfair, Acer, Gucci, Lorna Jane, GoPro, and many more

We thrive in a collaborative work setting, alongside great people, to build and enhance products that matter. Abundant opportunities to create and contribute provide us with a sense of purpose that extends beyond ourselves, leaving a lasting impact. These sentiments capture why we choose every day. 

About the Role

The Research and Data Science department plays a pivotal role in our company, generating value to client by developing algorithms and analytical production-grade solutions. We leverage advanced techniques and algorithms to provide maximum value from data in all shapes and sizes (such as classification models, NLP, anomaly detection, graph theory, deep learning, and more). As a Data Scientist, you will assume the classic data-science role of an end-to-end project development and implementation practitioner. Being part of the team requires a mix of hard quantitative and analytical skills, solid background in statistical modeling and machine learning, a technical data-savvy nature, along with a passion for problem-solving and a desire to drive data-driven decision-making.

What You'll Be Doing

·         Data Exploration and Preprocessing: Collect, clean, and transform large, complex data sets from various sources to ensure data quality and integrity for analysis

·         Statistical Analysis and Modeling: Apply statistical methods and mathematical models to identify patterns, trends, and relationships in data sets, and develop predictive models

·         Machine Learning: Develop and implement machine learning algorithms, such as classification, regression, clustering, and deep learning, to solve business problems and improve processes

·         Feature Engineering: Extract relevant features from structured and unstructured data sources, and design and engineer new features to enhance model performance

·         Model Development and Evaluation: Build, train, and optimize machine learning models using state-of-the-art techniques, and evaluate model performance using appropriate metrics

·         Data Visualization: Present complex analysis results in a clear and concise manner using data visualization techniques, and communicate insights to stakeholders effectively

·         Collaborative Problem-Solving: Collaborate with cross-functional teams, including product managers, data engineers, software developers, and business stakeholders to identify data-driven solutions and implement them in production environments

·         Research and Innovation: Stay up to date with the latest advancements in data science, machine learning, and related fields, and proactively explore new approaches to enhance the company's analytical capabilities

Qualifications

·         B.Sc (M.Sc is a plus) in Statistics, Computer Science, Mathematics, or a related field

·         3+ years of proven experience designing and implementing machine learning algorithms and techniques in production grade

·         Strong understanding and practical experience with various machine learning algorithms, such as linear regression, logistic regression, decision trees, similarity search, neural networks, and deep learning

·         Proficiency in programming languages such as Python or R for data manipulation, statistical analysis, and machine learning model development

·         Experience with SQL and data manipulation tools (e.g., Pandas, NumPy) to extract, clean, and transform data for analysis

·         Solid foundation in statistical concepts and techniques, including hypothesis testing, regression analysis, time series analysis, and experimental design

·         Strong analytical and critical thinking skills to approach business problems, formulate hypotheses, and translate them into actionable solutions

·         Proficient in data visualization libraries (e.g., Matplotlib, Seaborn, ggplot) to create meaningful visual representations of complex data

·         Excellent written and verbal communication skills to present complex findings and technical concepts to both technical and non-technical stakeholders

·         Demonstrated ability to work effectively in cross-functional teams, collaborate with colleagues, and contribute to a positive work environmentAdvantages:

·         Experience in the fraud domain

·         Experience with Airflow, CircleCI, PySpark, Docker and K8S

 

EXPERIENCE
  • 6-8 Years
SKILLS
  • Primary Skill: Data Science
  • Sub Skill(s): Data Science
  • Additional Skill(s): AI/ML Development, Data Science
ABOUT THE COMPANY

Infogain is a human-centered digital platform and software engineering company based out of Silicon Valley. We engineer business outcomes for Fortune 500 companies and digital natives in the technology, healthcare, insurance, travel, telecom, and retail & CPG industries using technologies such as cloud, microservices, automation, IoT, and artificial intelligence. We accelerate experience-led transformation in the delivery of digital platforms. Infogain is also a Microsoft (NASDAQ: MSFT) Gold Partner and Azure Expert Managed Services Provider (MSP).

Infogain, an Apax Funds portfolio company, has offices in California, Washington, Texas, the UK, the UAE, and Singapore, with delivery centers in Seattle, Houston, Austin, Kraków, Noida, Gurgaon, Mumbai, Pune, and Bengaluru.

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