Machine Learning Engineer

3 days ago


Gurugram, India Michael Page Full time
Competetive SalaryPF and Gratuity

About Our Client

Our client is an international professional services brand of firms, operating as partnerships under the brand. It is the second-largest professional services network in the world

Job Description

Position:

ML EngineerJob type:

Techno-FunctionalPreferred education qualifications:

Bachelor/ Master's degree in computer science, Data Science, Machine Learning OR related technical degreeJob location:

IndiaGeography:

SAPMENARequired experience:

6-8 YearsPreferred profile/ skills:

5+ years in developing and deploying enterprise-scale ML solutions[Mandatory] Proven track record in data analysis (EDA, profiling, sampling), data engineering (wrangling, storage, pipelines, orchestration), [Mandatory] Proficiency in Data Science/ML algorithms such as regression, classification, clustering, decision trees, random forest, gradient boosting, recommendation, dimensionality reduction[Mandatory] Experience in ML algorithms such as ARIMA, Prophet, Random Forests, and Gradient Boosting algorithms (XGBoost, LightGBM, CatBoost)[Mandatory] Prior experience on MLOps with Kubeflow or TFX[Mandatory] Experience in model explainability with Shapley plot and data drift detection metrics.[Mandatory] Advanced programming skills with Python and SQL [Mandatory] Prior experience on building scalable ML pipelines & deploying ML models on Google Cloud[Mandatory] Proven expertise in ML pipeline optimization and monitoring the model's performance over time[Mandatory] Proficiency in version control systems such as GitHubExperience with feature engineering optimization and ML model fine tuning is preferredGoogle Cloud Machine Learning certifications will be a big plusExperience in Beauty or Retail/FMCG industry is preferredExperience in training with large volume of data (>100 GB)Experience in delivering AI-ML projects using Agile methodologies is preferred Proven ability to effectively communicate technical concepts and results to technical & business audiences in a comprehensive mannerProven ability to work proactively and independently to address product requirements and design optimal solutionsFluency in English, strong communication and organizational capabilities; and ability to work in a matrix/ multidisciplinary team

Job objectives:

Design, develop, deploy, and maintain data science and machine learning solutions to meet enterprise goals. Collaborate with product managers, data scientists & analysts to identify innovative & optimal machine learning solutions that leverage data to meet business goals. Contribute to development, rollout and onboarding of data scientists and ML use-cases to enterprise wide MLOps framework. Scale the proven ML use-cases across the SAPMENA region. Be responsible for optimal ML costs.Job description:

Deep understanding of business/functional needs, problem statements and objectives/success criteriaCollaborate with internal and external stakeholders including business, data scientists, project and partners teams in translating business and functional needs into ML problem statements and specific deliverablesDevelop best-fit end-to-end ML solutions including but not limited to algorithms, models, pipelines, training, inference, testing, performance tuning, deploymentsReview MVP implementations, provide recommendations and ensure ML best practices and guidelines are followedAct as 'Owner' of end-to-end machine learning systems and their scaling Translate machine learning algorithms into production-level code with distributed training, custom containers and optimal model serving Industrialize end-to-end MLOps life cycle management activities including model registry, pipelines, experiments, feature store, CI-CD-CT-CE with Kubeflow/TFXAccountable for creating, monitoring drifts leveraging continuous evaluation tools and optimizing performance and overall costsEvaluate, establish guidelines, and lead transformation with emerging technologies and practices for Data Science, ML, MLOps, Data Ops

The Successful Applicant

Position:

ML EngineerJob type:

Techno-FunctionalPreferred education qualifications:

Bachelor/ Master's degree in computer science, Data Science, Machine Learning OR related technical degreeJob location:

IndiaGeography:

SAPMENARequired experience:

6-8 YearsPreferred profile/ skills:

5+ years in developing and deploying enterprise-scale ML solutions[Mandatory] Proven track record in data analysis (EDA, profiling, sampling), data engineering (wrangling, storage, pipelines, orchestration), [Mandatory] Proficiency in Data Science/ML algorithms such as regression, classification, clustering, decision trees, random forest, gradient boosting, recommendation, dimensionality reduction[Mandatory] Experience in ML algorithms such as ARIMA, Prophet, Random Forests, and Gradient Boosting algorithms (XGBoost, LightGBM, CatBoost)[Mandatory] Prior experience on MLOps with Kubeflow or TFX[Mandatory] Experience in model explainability with Shapley plot and data drift detection metrics.[Mandatory] Advanced programming skills with Python and SQL [Mandatory] Prior experience on building scalable ML pipelines & deploying ML models on Google Cloud[Mandatory] Proven expertise in ML pipeline optimization and monitoring the model's performance over time[Mandatory] Proficiency in version control systems such as GitHubExperience with feature engineering optimization and ML model fine tuning is preferredGoogle Cloud Machine Learning certifications will be a big plusExperience in Beauty or Retail/FMCG industry is preferredExperience in training with large volume of data (>100 GB)Experience in delivering AI-ML projects using Agile methodologies is preferred Proven ability to effectively communicate technical concepts and results to technical & business audiences in a comprehensive mannerProven ability to work proactively and independently to address product requirements and design optimal solutionsFluency in English, strong communication and organizational capabilities; and ability to work in a matrix/ multidisciplinary team

Job objectives:

Design, develop, deploy, and maintain data science and machine learning solutions to meet enterprise goals. Collaborate with product managers, data scientists & analysts to identify innovative & optimal machine learning solutions that leverage data to meet business goals. Contribute to development, rollout and onboarding of data scientists and ML use-cases to enterprise wide MLOps framework. Scale the proven ML use-cases across the SAPMENA region. Be responsible for optimal ML costs.Job description:

Deep understanding of business/functional needs, problem statements and objectives/success criteriaCollaborate with internal and external stakeholders including business, data scientists, project and partners teams in translating business and functional needs into ML problem statements and specific deliverablesDevelop best-fit end-to-end ML solutions including but not limited to algorithms, models, pipelines, training, inference, testing, performance tuning, deploymentsReview MVP implementations, provide recommendations and ensure ML best practices and guidelines are followedAct as 'Owner' of end-to-end machine learning systems and their scaling Translate machine learning algorithms into production-level code with distributed training, custom containers and optimal model serving Industrialize end-to-end MLOps life cycle management activities including model registry, pipelines, experiments, feature store, CI-CD-CT-CE with Kubeflow/TFXAccountable for creating, monitoring drifts leveraging continuous evaluation tools and optimizing performance and overall costsEvaluate, establish guidelines, and lead transformation with emerging technologies and practices for Data Science, ML, MLOps, Data Ops

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