Why This Role Stands Out
This hybrid role offers a fantastic opportunity to leverage your expertise in Google Cloud Platform and ML/AI to build impactful solutions, fostering significant career growth. You'll thrive here if you're a skilled developer passionate about cutting-edge AI integration and enjoy collaborating in a dynamic tech environment. Don't miss the chance to apply and contribute to innovative projects!
Quick Overview
Job Description
Need Local Or Near By Consultant Who Can Attend Face - Face Interview
Strong hands-on experience with Google Cloud Platform (Google Cloud Platform) and cloud-native application development.
Proficiency in Python for backend development, automation, APIs, and ML/AI application integration.
Experience with Google Cloud Platform services including Cloud Run, Cloud Functions, BigQuery, Cloud Storage, Pub/Sub, and Vertex AI.
Experience designing and developing scalable, secure, and highly available cloud applications.
Strong understanding of REST APIs, microservices, event-driven architecture, and serverless computing.
Hands-on experience integrating ML models, GenAI/LLM services, and AI APIs into cloud applications.
Experience with CI/CD, Git, Docker, Kubernetes, and Terraform/IaC.
Knowledge of Google Cloud Platform IAM, networking, security, monitoring, logging, and cost optimization.
Experience working with Databricks and cloud-based data platforms is preferred.
Ability to collaborate with Data Engineers, ML Engineers, Data Scientists, and Architects to deliver production-ready AI solutions.
Data Engineer – ML/AI Focus
Strong experience in data engineering and data pipeline development using Python and SQL.
Hands-on experience with Databricks, Apache Spark, Delta Lake, Databricks Workflows, and notebooks.
Strong knowledge of Google Cloud Platform data services, including BigQuery, Cloud Storage, Pub/Sub, and Dataflow.
Experience designing and implementing scalable ETL/ELT batch and real-time data pipelines.
Strong understanding of data modeling, data warehousing, data quality, governance, and data integration.
Experience preparing and transforming large datasets for ML/AI and GenAI/LLM applications.
Knowledge of feature engineering, feature pipelines, and ML data preparation is preferred.
Experience implementing data pipeline orchestration, CI/CD, Git, testing, and monitoring.
Strong understanding of cloud security, IAM, data privacy, and performance/cost optimization.
Ability to work closely with Cloud Developers, ML Engineers, Data Scientists, and business teams to deliver reliable production data platforms.
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