Junior Data Scientist

OmegaHires

• $80K — $95K *
Information Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • Minimum of 5 years of hands-on experience in developing GenAI/machine learning models and cloud deployment.
  • Proficiency with Google Cloud Platform (GCP) and its AI/ML offerings like Vertex AI and BigQuery.
  • Experience with agentic frameworks and Retrieval-Augmented Generation (RAG) concepts.
  • Strong software engineering skills in Python, with knowledge of ML frameworks such as TensorFlow and PyTorch.
  • Experience with microservices architectures and containerized solutions, especially using GKE.

Responsibilities

  • Develop GenAI/ML models through entire SDLC from problem framing to model evaluation.
  • Implement microservice-based AI solutions and define APIs for data contracts.
  • Utilize GCP tools to create scalable AI solutions and execute efficient data workflows.
  • Deploy, monitor, and maintain production models, ensuring observability and cost optimization.
  • Ensure compliance with cloud security and regulatory requirements, managing IAM roles and data controls.
  • Collaborate with cross-functional teams to develop robust ML solutions aligned with business needs.
  • Stay updated on GenAI advancements to produce reproducible experiments and artifacts.

Benefits

  • Flexible working hours and the potential for remote work.
  • Opportunities for professional development and skill enhancement.
  • Access to the latest AI and machine learning tools and technologies.
  • Collaborative and supportive team environment with cross-functional interactions.
  • Engagement in projects that impact the pharmaceutical sector, offering a sense of purpose in work.
Full Job Description
Junior Data Scientist

Summary: We are seeking a Junior Data Scientist with at least 5 years of hands-onexperience in developing GenAI/machine learning models and deploying them in acloud environment, preferably on Google Cloud Platform (GCP). The ideal candidatewill develop microservice-based solutions, containerize deployments (e.g., GKE), anddrive end-to-end SDLC practices. Experience in the pharma domain is a strongadvantage.Key ResponsibilitiesWork on end-to-end development of GenAI/ML models: problem framing, datapreparation, model selection, training, evaluation, and iteration.Implement microservice-based AI solutions and deploy them in containerizedenvironments (preferably GKE); define APIs and data contracts.Leverage GCP offerings (Vertex AI, BigQuery, Dataflow, Cloud Storage, Pub/Sub, CloudRun, GKE, etc.) to develop scalable AI solutions and efficient data workflows.Deploy, monitor, and maintain models in production; implement observability (logs,metrics, tracing), cost optimization, and performance tuning.Ensure cloud security, data governance, and compliance in line with regulatoryrequirements; manage IAM roles, data access controls, and data lineage.Collaborate with cross-functional teams (data engineers, software engineers, product,regulatory/compliance, analytics) to translate business needs into robust ML solutions.Stay current with GenAI advancements and evaluate new tools/approaches; producereproducible experiments and artifacts.Required QualificationsMinimum 5 years of hands-on experience developing GenAI/ML models and deployingthem in a cloud environment.Proficiency with Google Cloud Platform (GCP) and its AI/ML offerings (e.g., Vertex AI,BigQuery, Dataflow, Cloud Storage, Pub/Sub, Cloud Run, GKE).Must have experience working with any agentic frameworkKnowledge of Retrieval-Augmented Generation (RAG) concepts and processesStrong software engineering skills: Python (primary), experience with ML frameworks(TensorFlow, PyTorch, scikit-learn), and API development (REST/GraphQL).

Experience designing and deploying microservices architectures and containerizedsolutions (Docker, Kubernetes; preference for GKE).Solid experience in MLOps: model versioning, experiments, automated training, featurestores, model registries, monitoring, and governance.Data processing and analytics expertise: SQL, data pipelines, ETL/ELT concepts, dataquality, and data visualization support.Excellent problem-solving, communication, and collaboration skills; ability to work withcross-disciplinary teams.Understanding of cloud security concepts, IAM, and basic principles of data privacy andcompliance.Demonstrated ability to translate business problems into scalable ML solutions and tocommunicate technical concepts to non-technical stakeholders.Preferred QualificationsExperience in the pharmaceutical/pharma domain or regulated industries; familiaritywith GxP, or similar data governance requirements.Exposure to other cloud providers (AWS/Azure) is a plus, but a strong preference forGCP.

Education: Minimum qualification: Graduate degree in Information Technology. Preferred: Higher education (e.g., Master's degree in Computer Science,Information Technology, Data Science, or a related field) or relevant professionaldegrees/certifications.

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