Senior-level Data Engineering + Machine Learning + MLOps

DCM Infotech Limited

$120K — $145K *
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 5-7 years of experience in advanced statistics and machine learning modeling
  • Proficiency in SQL and Python for data manipulation and analysis
  • Experience with data engineering for scalable ETL/ELT pipelines
  • In-depth knowledge of modern cloud data platforms and architectures
  • Familiarity with MLOps tools and practices for deployment and monitoring

Responsibilities

  • Develop and implement advanced statistical models and machine learning algorithms
  • Design and maintain ETL/ELT processes for batch and streaming data
  • Build and optimize data models across various sources addressing analytics needs
  • Establish data quality and governance frameworks to ensure reliable data products
  • Deploy and monitor machine learning models, ensuring efficient performance and stability

Benefits

  • Opportunity to work with cutting-edge technology and modern data platforms
  • Collaboration with a skilled team of data professionals
  • Professional growth through exposure to advanced MLOps practices
  • Flexibility in working arrangements and a focus on work-life balance
  • Access to continuous learning and development resources
Full Job Description
Need Certified Candidates Only

Required skills:

Advanced statistics and ML modeling (hypothesis testing, experimentation, feature engineering, evaluation, calibration). Strong SQL/Python for large-scale data wrangling (joins, windows, tuning, cleansing, reconciliation, automated quality checks).

Data engineering for scalable batch/streaming pipelines (ETL/ELT, CDC, incremental, Airflow/Prefect/Dagster).

Deep knowledge of modern data platforms (lakehouse/warehouse, S3/ADLS, Snowflake/BigQuery/Redshift, Parquet/Delta/Iceberg, partitioning, access control). MLOps deployment with Docker, Kubernetes, CI/CD, MLflow, and end-to-end monitoring.

Nice to have skills:

"Build and maintain production-grade data pipelines (batch and streaming) with clear SLAs, retries, idempotency, and automated backfills.

Integrate and model data across sources by defining schemas, keys, transformations, and curated layers that support analytics and ML consumption.

Implement data quality, observability, and governance controls, including validation rules, lineage, access controls, and anomaly detection on data freshness and volume.

Productionize analytics and ML by packaging models, deploying services or jobs, managing versioning, and monitoring drift, performance, and latency.

Serve trusted data products to consumers via optimized warehouse tables, feature stores, and APIs, ensuring secure access and predictable query performance."

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