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Senior Data Engineer
MLabsSenior Data Engineer spearheading data infrastructure initiatives for a high-volume decentralized finance protocol. Optimizing data processing, establishing best practices, and ensuring system reliability.
Posted 7/30/2026full-timeNew York City • New York • 🇺🇸 United StatesSenior💰 $180,000 - $320,000 per yearWebsite
Core Competencies
Role fitCore Competencies
Use this summary to align your resume positioning with the role.
Demonstrates expertise in refining and scaling high-throughput data pipelines while ensuring security and stability. Proficient in data modeling frameworks and orchestration platforms, with a strong focus on optimizing system performance and enabling self-service infrastructure.
Highest-signal resume keywords
Data Modeling FrameworksData Orchestration PlatformsPostgreSQLClickHouseAI Acceleration Tools
ATS Keywords
Tailor your resumeApplicant Tracking System Keywords
Tip: use these terms in your resume and cover letter to boost ATS matches.
Hard Skills
Data ModelingData Pipeline ArchitectureDistributed SystemsSystem OptimizationApplication Code Development
Soft Skills
Cross-Functional CollaborationGuidance and Mentorship
Tools & Technologies
DbtSQLMeshAirflowDagsterPrefect
Industry Keywords
High-Throughput Data PipelineSecurity TestingPlatform StabilityTest SuitesSelf-Service Infrastructure
Tech Stack
Tools & technologiesAirflowDistributed SystemsDockerGoGrafanaKubernetesMicroservicesPostgresPrometheusTerraform
About the role
Key responsibilities & impact- Refine, maintain, and scale a high-throughput data pipeline to support complex, high-volume trading infrastructure.
- Lower latency on critical path applications through system optimization, architectural enhancements, and direct application code development.
- Mature and enhance an in-house testing and validation stack to allow developers to run applications locally across multiple environments and parallel agents.
- Define organization-wide data standards, guide cross-functional software engineers on pipeline leverage, and enable 90% self-service infrastructure autonomy across the team.
- Maintain a security-first approach by identifying attack vectors, coordinating simulated system security testing, and maintaining rigorous platform stability using AI tools and comprehensive test suites.
Requirements
What you’ll need- Strong background in data modeling frameworks (e.g., dbt, SQLMesh) and data orchestration platforms (e.g., Airflow, Dagster, Prefect).
- Production experience with databases such as PostgreSQL and ClickHouse.
- Deep understanding of modern data pipeline architectures, distributed systems, and industry best practices.
- Proficiency in leveraging AI acceleration tools while validating outputs and implementing strict code quality guardrails.
Benefits
Comp & perks- Competitive base salary.
- Equity ownership package.
- Network token allocation.