Analytics Engineer III

Bristol Myers Squibb

Hyderabad

On-site

INR 3,500,000 - 5,600,000

Full time

3 days ago
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Job summary

Bristol Myers Squibb in Hyderabad seeks an Analytics Engineer III to own data and ML engineering systems at scale. You will design, build, and operate end-to-end data products and ML pipelines, collaborating with US counterparts and platform teams to deliver enterprise-grade solutions.

You will contribute to team standards, code reviews, and junior engineer growth while focusing on scalable, reliable, and governance-conscious data platforms across Databricks and cloud environments.

Qualifications

  • Bachelor’s/Master’s/Ph.D. in Computer Science, Data Engineering, Data Science, or related field.
  • 5+ years hands-on data engineering and/or MLOps experience, preferably in biopharma or life sciences.
  • Proven track record of building enterprise-scale data products and ML pipelines end-to-end in production.
  • Deep Databricks hands-on — Lakehouse, Delta Lake optimization, Unity Catalog, Workflows, DABs.
  • Experience leading cloud migration or modernization to Databricks, AWS, or Kubernetes at scale.
  • Familiarity with healthcare/clinical data governance (GxP, HIPAA).

Responsibilities

  • Design and operate end-to-end data products and ML pipelines across Databricks Lakehouse.
  • Build production-grade Lakehouse pipelines with Delta Lake, Unity Catalog, DLT, and Structured Streaming.
  • Develop reusable libraries and templates to reduce engineering toil for data scientists.
  • Define CI/CD strategy for ML, including model validation gates and canary/shadow deployments.
  • Lead observability and data governance across data/ML systems with tools like Great Expectations and Prometheus.
  • Collaborate with Data Science, MLOps, IT, and US teams to plan and deliver.

Skills

Databricks
Delta Lake
Unity Catalog
Workflows
DLT (Delta Live Tables)
Databricks SQL
Structured Streaming
Lakehouse Monitoring
MLOps Tooling
MLflow
Dagster/Airflow/Kedro
DVC
Feast
Hydra/OmegaConf
AWS
SageMaker
EKS
S3
IAM
Azure
Kubernetes
Docker
GitHub Actions
Pre-commit/Ruff
Nox
Poetry
Pytest
Python
SQL
PySpark
Data Modeling
dbt
Polars
Pandas
DuckDB
FastAPI
BentoML
Triton
KServe
Evidently
Great Expectations
Prometheus
Grafana
Claude Code
Copilot
LLMOps
RAG
Vector Databases

Education

Bachelor's/Master's/Ph.D. in Computer Science, Data Engineering, Data Science, or related field

Tools

Databricks
Delta Lake
Unity Catalog
Workflows
Delta Live Tables
Databricks SQL
SageMaker
AWS
Azure
Kubernetes
Docker
GitHub Actions
PySpark
dbt
Polars

Job description

At Bristol Myers Squibb, our employees often ask, “Who are you working for?”—a question that fuels collaboration, accountability, and urgency in our work. Our purpose-driven culture inspires us to discover, develop, and deliver innovative medicines to prevail over serious diseases. We offer uniquely interesting and meaningful work, opportunities for growth, and a supportive environment that values inclusion, wellbeing, flexibility, and comprehensive benefits. This is work that transforms the lives of patients, and the careers of those who do it.

Summary

The Analytics Engineer III is a senior individual contributor role within BIT Hyderabad, owning the design, build, and operation of both data engineering and ML engineering systems that power analytics, data science, and AI/ML at scale across BMS. The AE-3 is hands‑on and execution‑focused — delivering enterprise‑grade data products, ML pipelines, and platform infrastructure while collaborating closely with US counterparts, data scientists, and platform teams. They also contribute to team standards, code reviews, and junior engineer growth as a natural part of the role.

Roles & Responsibilities
Data & Lakehouse Engineering
  • Design and operate end‑to‑end data products — ingestion → medallion architecture → transformation → serving → CI/CD → observability — on Databricks at enterprise scale
  • Build production‑grade Lakehouse pipelines using Delta Lake (OPTIMIZE, ZORDER, liquid clustering, CDF), Unity Catalog, Workflows, Delta Live Tables, and Structured Streaming
  • Deploy using Databricks Asset Bundles (DABs); write modular Python code with secure credential management via service principals, secret scopes, and IAM
  • Define and enforce data engineering standards — versioned pipelines, data contracts, automated quality gates, lineage, and standardized project templates
  • Drive Databricks optimization — cluster sizing, Photon, autoscaling, and SQL warehouse tuning
ML Engineering & MLOps
  • Design and operate end-to-end ML pipelines — feature engineering, model training, evaluation, deployment, serving, and monitoring — with emphasis on scalability and reliability
  • Build and maintain MLOps platform components — experiment tracking, model registries, CI/CD for ML, feature stores, and containerized environments
  • Define CI/CD strategy for ML — model validation gates, canary/shadow deployments, automated rollback, and high‑availability inference patterns
  • Manage production ML pipeline schedules across batch and real‑time inference — SLA adherence, issue triage, and incident resolution
Observability & Platform
  • Architect observability across data and ML systems — Great Expectations, Pandera, Evidently, Databricks Lakehouse Monitoring, Prometheus, Grafana — covering data quality, model drift, and SLAs/SLOs
  • Lead cloud migration and modernization to AWS, Databricks, and Kubernetes‑based architectures
  • Develop reusable libraries, templates, and frameworks to reduce engineering toil for data scientists and peers
  • Leverage AI tools (Claude Code, Copilot) to accelerate delivery and build reusable skills/agents
Collaboration & Standards
  • Partner with Data Science, MLOps, IT, and US counterparts on execution, planning, and delivery
  • Conduct code and design reviews; contribute to team standards and help unblock peers
  • Ensure compliance with GxP, HIPAA, and pharmaceutical data governance standards with Unity Catalog as the governance backbone
  • Communicate technical decisions clearly through documentation, runbooks, and RFCs
Skills & Competencies

DomainKey SkillsDatabricksDelta Lake, Unity Catalog, Workflows, DLT, Databricks SQL, Structured Streaming, DABs, Lakehouse MonitoringMLOps ToolingMLflow, Dagster/Airflow/Kedro, DVC, Feast, Hydra/OmegaConfCloud & InfraAWS (SageMaker, EKS, S3, IAM) and/or Azure (AzureML, AKS, ADLS); Kubernetes; DockerCI/CD & HygieneGitHub Actions, pre-commit, Ruff, nox, uv/Poetry, PytestProgrammingExpert Python & SQL; PySpark; data modeling (dimensional, Data Vault, medallion)Data Toolingdbt, Polars, Pandas, DuckDBML ServingFastAPI, BentoML, Triton, KServeMonitoringEvidently, Great Expectations, Pandera, Prometheus, GrafanaAI-AugmentedClaude Code, Copilot; LLMOps, RAG, vector databasesGovernanceUnity Catalog, IAM, secrets management, GxP/HIPAA

Experience
  • Bachelor's, Master's, or Ph.D. in Computer Science, Data Engineering, Data Science, or related field
  • 5+ years hands‑on data engineering and/or MLOps experience, preferably in biopharma or life sciences
  • Proven track record building and owning enterprise‑scale data products and ML pipelines end‑to‑end in production
  • Deep Databricks hands‑on — Lakehouse, Delta Lake optimization, Unity Catalog, Workflows, DABs
  • Experience leading cloud migration or modernization to Databricks, AWS, or Kubernetes at scale
  • Familiarity with healthcare/clinical data, regulatory considerations (GxP, HIPAA), and pharmaceutical data governance
  • Experience with AI‑augmented engineering tools (Claude Code, Copilot) to streamline workflows
  • Cross‑geo collaboration with US‑based teams strongly preferred
  • Databricks Certification (Data Engineer Associate/Professional) or cloud certification (AWS / Azure / GCP)
How We Work

Where you work matters – because collaboration, innovation and patient impact happen in many settings. Our roles are structured across four work models site-essential, site-by-design, field-based and remote-by-design. The model assigned to this role is based on its core responsibilities. Learn more at https //careers.bms.com/ways-of-working.

Supporting People With Disabilities

BMS is dedicated to ensuring that people with disabilities can excel through a transparent recruitment process, reasonable workplace accommodations/adjustments and ongoing support in their roles. Applicants can request a reasonable workplace accommodation/adjustment prior to accepting a job offer. If you require reasonable accommodations/adjustments in completing this application, or in any part of the recruitment process, direct your inquiries to adastaffingsupport@bms.com. Visit careers.bms.com/eeo-accessibility to access our complete Equal Employment Opportunity statement.

Candidate Rights

BMS will consider qualified applicants with arrest and conviction records, pursuant to applicable laws in your area.

For roles based in Los Angeles County only If you live in or expect to work from Los Angeles County if hired for this position, please visit this page for important additional information https //careers.bms.com/california-residents/

Data Protection

We will never request payments, financial information, or social security numbers during our application or recruitment process. Learn more about protecting yourself at https //careers.bms.com/fraud-protection.

Any data processed in connection with role applications will be treated in accordance with applicable data privacy policies and regulations.

If this posting is missing required information required by local law or incorrect, contact BMS at TAEnablement@bms.com with the Job Title and Requisition number. Do not send application‑related inquiries to this email. To check your application status, please login to your Candidate Home Account.

R1603499 Analytics Engineer III

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