Data Engineer — Forward Deployed

Posted 2 Days Ago
5 Locations
Remote
Entry level
Information Technology • Software • Consulting
The Role
Design and deliver cloud-native data platforms, scalable big data pipelines, lakehouses, warehouses, transformation frameworks, BI solutions, and ML-enabled data workflows. Lead client-facing pre-sales engagements, technical workshops, proof-of-concepts, executive conversations, and enterprise data modernization initiatives. Build reusable architectural IP, influence senior stakeholders, and translate ambiguous business challenges into production-ready solutions using AWS and modern data technologies.
Summary Generated by Built In
Opportunity

You won't be building from the sidelines. As a Modus Data Engineer embedded in our Modus Data & ML practice, you operate as a forward deployed engineer — right at the frontier of enterprise data transformation. You'll work directly with clients to accelerate pre-sales opportunities, collaborating with Sellers to turn data challenges into production-grade solutions.

Our team drives data platform engineering, big data modernization, and analytics transformation for some of the largest organizations in the world — helping them migrate to cloud-native data platforms, build scalable data pipelines, and unlock the full value of their data estates on AWS and beyond. You'll be in the room (or the call) where it happens, turning ambiguity into architectures and architectures into outcomes.

This isn't a role for people who want to sit back and review tickets. You'll lead Executive Conversations, drive proof-of-concepts, run technical workshops, and build reusable IP that multiplies impact across customers, market segments, and technology domains. If you thrive on complexity, love building scalable patterns, and want your work to directly shape enterprise deals and client outcomes — this is your seat.

What you'll do
  • Lead technical pre-sales engagements — Executive Conversations, workshops, POCs — directly alongside Sellers, turning ambiguous client data challenges into validated, production-ready architectural solutions.
  • Architect and deliver end-to-end data platform solutions across the modern data stack: ingestion, transformation, storage, orchestration, and visualization.
  • Design and implement scalable big data pipelines using Spark, Scala, EMR, Glue, and Airflow — processing petabyte-scale workloads with reliability and efficiency.
  • Build and optimize data warehousing and lakehouse solutions on Snowflake, Databricks, Redshift, and Apache Hadoop ecosystems.
  • Implement data transformation frameworks using dbt and deliver BI solutions across Power BI, Tableau, QuickSight, and Looker.
  • Integrate AI and ML capabilities into data platforms — building feature stores, ML pipelines, model serving infrastructure, and GenAI-powered data workflows.
  • Identify repeatable patterns, build reusable architectural IP, and influence senior stakeholders as a credible voice on data modernization strategy.
  • Drive force-multiplication: create mechanisms, enablement assets, and documentation that scale your impact well beyond your direct engagements.
Requirements
  • Cloud data platforms: hands-on experience with Snowflake, Databricks, Amazon Redshift, and/or Apache Hadoop (HDFS, YARN, Hive) — plus AWS big data services including EMR, Glue, Athena, Lake Formation, and Kinesis.
  • Big data processing: production Spark in PySpark and/or Scala for batch and streaming; Apache Airflow for orchestration; AWS Glue for serverless ETL/ELT; Kafka or Kinesis for streaming pipelines.
  • Data transformation & modeling: hands-on dbt (modular pipelines, tests, CI/CD integration); strong SQL across analytical databases; experience with Kimball, Data Vault, or OBT modeling patterns and lakehouse formats (Delta Lake, Iceberg, Hudi).
  • Data visualization & BI: experience delivering solutions on one or more of Power BI, Tableau, Amazon QuickSight, or Looker — including semantic layer design, governance, and performance optimization.
  • AI & ML integration: experience with ML workflows (feature engineering, model pipelines, MLOps with MLflow or W&B); familiarity with GenAI/LLMs in data contexts (RAG, NL2SQL, LLM-powered data quality); exposure to AWS AI services (SageMaker, Bedrock).
  • Core engineering: strong Python and/or Scala fundamentals; ability to write clean, tested, maintainable code and apply engineering discipline to data work.
  • Client-facing delivery: comfort translating technical depth into business language; ability to lead POC engagements end-to-end and present to senior stakeholders.
  • Distributed teamwork: experience in async-first, globally distributed environments — you don't need to be in the same timezone to drive outcomes.
Bonus Points
  • AWS certifications: Data Analytics Specialty, Solutions Architect, Machine Learning Specialty, or Database Specialty.
  • Databricks certifications or Snowflake SnowPro credentials.
  • Experience with data mesh, data contracts, or data product frameworks.
  • Background in consulting, professional services, or solutions engineering — you know how to run a room.
  • Familiarity with data governance and cataloging tools (Glue Catalog, Unity Catalog, Collibra).
  • Contributions to open-source data tooling, dbt packages, Spark libraries, or reusable architectural patterns
You'll Love
  • Being the technical voice in the room — not just a builder in the back, but a strategic force in enterprise
    data deals.
  • Working at the intersection of data engineering, big data, cloud infrastructure, and generative AI on
    problems that actually matter at scale.
  • Building reusable IP that outlives individual engagements and shapes how entire market segments
    modernize their data platforms.
  • Collaborating with Fortune 500 clients and a globally distributed team of sharp, low-ego engineers.
    The autonomy to define solutions, the support to deliver them, and the recognition when they land

By joining our team, you'll be part of a group that values precision, honest communication, and delivering work that stands up to scrutiny. Apply now and show us you've got what it takes to build data platforms that matter.


Skills Required

  • Hands-on experience with Snowflake, Databricks, Amazon Redshift, and/or Apache Hadoop, including HDFS, YARN, or Hive.
  • Experience with AWS big data services including EMR, Glue, Athena, Lake Formation, and Kinesis.
  • Production experience with Spark using PySpark and/or Scala for batch and streaming workloads.
  • Experience with Apache Airflow orchestration and AWS Glue serverless ETL/ELT.
  • Experience with Kafka or Kinesis streaming pipelines.
  • Hands-on dbt experience, including modular pipelines, testing, and CI/CD integration.
  • Strong SQL skills across analytical databases.
  • Experience with Kimball, Data Vault, or One Big Table modeling patterns.
  • Experience with lakehouse formats such as Delta Lake, Iceberg, or Hudi.
  • Experience delivering BI solutions using Power BI, Tableau, Amazon QuickSight, or Looker.
  • Experience with semantic layer design, governance, and BI performance optimization.
  • Experience with ML workflows, feature engineering, model pipelines, or MLOps using MLflow or Weights & Biases.
  • Familiarity with GenAI and LLM applications in data contexts, including RAG, NL2SQL, or LLM-powered data quality.
  • Exposure to AWS AI services such as SageMaker or Bedrock.
  • Strong Python and/or Scala fundamentals with clean, tested, maintainable code.
  • Ability to translate technical concepts into business language and lead proof-of-concept engagements end-to-end.
  • Ability to present to senior stakeholders and work effectively in distributed, async-first teams.
  • AWS certification in Data Analytics, Solutions Architecture, Machine Learning, or Database Specialty.
  • Databricks certification or Snowflake SnowPro credential.
  • Experience with data mesh, data contracts, or data product frameworks.
  • Consulting, professional services, or solutions engineering background.
  • Familiarity with Glue Catalog, Unity Catalog, or Collibra.
  • Contributions to open-source data tooling, dbt packages, Spark libraries, or reusable architectural patterns.
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The Company
HQ: Reston, VA
249 Employees
Year Founded: 2011

What We Do

Modus Create builds customer-centric products, processes, and platforms to help businesses succeed in the digital economy. For over 10 years, our global team of strategists, designers, and technologists have helped the world’s biggest brands such as Burger King, Kaplan, AARP, PBS, and Time Inc. deliver powerful digital experiences to their clients. We work in an iterative, outcome-driven way to support our clients with product strategy, customer experience (CX), full stack Agile software development, and security. Inc Magazine has rated Modus Create as one of the fastest-growing American companies for 7 years in a row. Our distributed team of Modites have been pioneers in the open-source community, creating innovations such as the Ionic-Vue integration, RoboDomo, Beep, and Capsule.

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