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AI/ML Engineer (Data Science & MLOps) (Hyderabad)

Fresher   Hyderabad   09 Jul, 2026
Job LocationHyderabad
EducationNot Mentioned
SalaryNot Disclosed
IndustryIT Services & Consulting
Functional AreaNot Mentioned
EmploymentTypeFull-time

Job Description

    Data ScientistExperience: 68 yearsRole OverviewWe are seeking a Data Scientist with a strong engineering background to design, build, train, and operationalizemachine learning models that deliver measurable business impact.You will work end-to-end across feature engineering, model training, inference, and post-processing, leveraging amodern, cloud-native ML platform built on GCP and Kubernetes.This role blends strong statistical and machine learning expertise with hands-on MLOps practices, ensuringmodels are reliable, scalable, and production-ready.Key ResponsibilitiesModel Development & Data ScienceDevelop, train, and validate machine learning models using Python.Perform feature engineering, exploratory data analysis, and model evaluation.Apply appropriate ML techniques for prediction, classification, or optimization use cases.ML Workflow OrchestrationUse Argo Workflows on Kubernetes to orchestrate model inference and post-processing pipelines.Design repeatable, automated workflows for ML experiments and production inference.Model Training & ValidationLeverage Vertex AI to run scalable model training, hyperparameter tuning, and validation.Ensure reproducibility and consistency across training runs.Model Runtime & InferenceBuild and maintain Python-based runtimes for training, inference, and feature engineering.Optimize inference pipelines for performance, reliability, and scalability.Handle and monitor pipelines in production environments.Participate in Oncall rotation for inference infrastructure.Model Storage & Lifecycle ManagementHandle trained artifacts in Google Cloud Storage (GCS).Track model metadata, versions, and lineage using Argo or custom model registries.Support model versioning, rollback, and auditability.Quality, Monitoring & GovernanceDefine model evaluation metrics and validation criteria.Support post-deployment monitoring, drift detection, and retraining strategies.Follow best practices for documentation, testing, and responsible AI usage.Required Skills & QualificationsTechnical SkillsStrong on-hands proficiency in Python for data science and machine learning use-cases.Hands-on experience with ML frameworks (e.G., PyTorch, scikit-learn, catboost, ).Familiarity with Kubernetes and Kubernetes-based workflows, especially Argo Workflows.Data Science & ML ConceptsStrong understanding of feature engineering, model evaluation, and validation techniques.Experience taking models from experimentation to production inference.Understanding of ML lifecycle management and MLOps principles.Soft SkillsStrong analytical and problem-solving mindset.Ability to translate business problems into data science solutions.Explicit communication skills to explain models and results to diverse stakeholders.Nice to HaveExperience with real-time or batch inference systems.Exposure to CI/CD for ML pipelines.- Familiarity with model monitoring, drift detection, and retraining strategies Data ScientistExperience: 68 yearsRole OverviewWe are seeking a Data Scientist with a strong engineering background to design, build, train, and operationalizemachine learning models that deliver measurable business impact.You will work end-to-end across feature engineering, model training, inference, and post-processing, leveraging amodern, cloud-native ML platform built on GCP and Kubernetes.This role blends strong statistical and machine learning expertise with hands-on MLOps practices, ensuringmodels are reliable, scalable, and production-ready.Key ResponsibilitiesModel Development & Data ScienceDevelop, train, and validate machine learning models using Python.Perform feature engineering, exploratory data analysis, and model evaluation.Apply appropriate ML techniques for prediction, classification, or optimization use cases.ML Workflow OrchestrationUse Argo Workflows on Kubernetes to orchestrate model inference and post-processing pipelines.Design repeatable, automated workflows for ML experiments and production inference.Model Training & ValidationLeverage Vertex AI to run scalable model training, hyperparameter tuning, and validation.Ensure reproducibility and consistency across training runs.Model Runtime & InferenceBuild and maintain Python-based runtimes for training, inference, and feature engineering.Optimize inference pipelines for performance, reliability, and scalability.Handle and monitor pipelines in production environments.Participate in Oncall rotation for inference infrastructure.Model Storage & Lifecycle ManagementHandle trained artifacts in Google Cloud Storage (GCS).Track model metadata, versions, and lineage using Argo or custom model registries.Support model versioning, rollback, and auditability.Quality, Monitoring & GovernanceDefine model evaluation metrics and v

Keyskills :
PythonMachine LearningData ScienceKubernetesGoogle Cloud PlatformModel ValidationFeature EngineeringModel TrainingInferenceMLOpsArgo WorkflowsPyTorchscikitlearnCatboostModel EvaluationML Lifecycle ManagementModel Monitoring

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