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Snowflake Jobs in Dallas, TX (NOW HIRING)

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Support Snowflake data ingestion, transformation, compute, security, and ML integrations. * Containerize ML workloads using Docker and deploy workloads through Kubernetes or comparable orchestration ...

At Snowflake, we are powering the era of the agentic enterprise. To usher in this new era, we seek AI-native thinkers across every function who are energized by the opportunity to reinvent how they ...

Lead Snowflake Developer

Dallas, TX · On-site

$58.50 - $76.75/hr

Lead Snowflake Developer Location: Dallas, TX Key Responsibilities * Lead the end-to-end architecture and implementation of Snowflake (Bronze/Silver/Gold layers). * Partner with business and data ...

Senior Snowflake Data Engineer

Dallas, TX · On-site

$113K - $136K/yr

We are seeking a Senior Snowflake Data Engineer with strong hands-on experience in Snowflake and Databricks to join our data engineering team in Dallas, TX. The ideal candidate will be responsible ...

Snowflake Architect and Admin

Coppell, TX · On-site

$59.25 - $76.25/hr

Snowflake Architect and Admin Location: Coppell, TX ( 3 days WFO (Tue - Thu) weekly) Duration: Long Term Contract Roles & Responsibilities and Skillset: Snowflake Administrator (Snowflake Admin)

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AWS/Snowflake Data Engineer Location: Richardson, OK Type: Contract Compensation: $90.32 Work Model: Hybrid - onsite and remote Hours: 40.0 Security Clearance: Not specified Overview The Sr. Cloud ...

AWS/Snowflake Data Engineer Location: Richardson, OK Type: Contract Compensation: $90.32 Work Model: Hybrid - onsite and remote Hours: 40.0 Security Clearance: Not specified Overview The Sr. Cloud ...

Lead Data Platform Engineer, Snowflake

Plano, TX · On-site

$98K - $129K/yr

Manage Snowflake warehouses, databases, schemas, roles, and access controls following enterprise best practices * Develop and enforce standards for performance optimization, cost management, workload ...

AWS/Snowflake Data Engineer Location: Richardson, OK Type: Contract Compensation: $90.32 Work Model: Hybrid - onsite and remote Hours: 40.0 Security Clearance: Not specified Overview The Sr. Cloud ...

Snowflake Data Engineer

Plano, TX · On-site

$109K - $131K/yr

Snowflake Certification * Must possess at least one valid Snowflake certification (e.g., SnowPro Core or equivalent). * Candidate should be able to demonstrate understanding of Snowflake architecture ...

Showing results 21-40

Snowflake information

See Dallas, TX salary details

$35

$66

$83

How much do snowflake jobs pay per hour?

As of Sep 3, 2026, the average hourly pay for snowflake in Dallas, TX is $66.88, according to ZipRecruiter salary data. Most workers in this role earn between $59.23 and $75.87 per hour, depending on experience, location, and employer.

What is a Snowflake?

A Snowflake job typically refers to tasks executed within Snowflake, a cloud-based data platform. These jobs can include data loading, transformation, querying, or scheduled tasks using Snowflake's task and stream features. They help automate data workflows, improve performance, and ensure efficient data management within the Snowflake ecosystem.

What are the key skills and qualifications needed to thrive in the Snowflake position?

To thrive as a Snowflake professional (such as a Snowflake Data Engineer or Administrator), you need a solid understanding of cloud data warehousing, SQL, and data modeling, typically supported by a degree in computer science or related fields. Experience with the Snowflake platform, data integration tools (like Informatica or Talend), and relevant certifications such as SnowPro are highly valuable. Strong problem-solving abilities, communication skills, and adaptability help professionals translate business requirements into data solutions and work effectively with cross-functional teams. These competencies are crucial for optimizing data workflows, ensuring system performance, and supporting the data-driven goals of an organization.

What are some common challenges faced by Snowflake professionals, and how can they be addressed?

Snowflake professionals often encounter challenges such as optimizing query performance, managing data security and access controls, and integrating Snowflake with multiple data sources. Addressing these challenges requires continuous learning about the platform’s evolving features, proactively monitoring query and storage usage, and collaborating closely with data architects, DevOps, and IT security teams. Staying up to date with best practices and regularly attending Snowflake community webinars or training can also be extremely helpful. Most companies encourage knowledge sharing and collaboration, so being proactive in problem-solving will help you thrive in this role.

Does Snowflake offer remote jobs?

Snowflake offers remote job opportunities for various roles, including data engineers, analysts, and software engineers. Many positions are fully remote or have flexible work arrangements, often requiring proficiency with cloud platforms and collaboration tools. Candidates should review specific job listings for location and remote work options.

Is Snowflake a good career?

A career as a Snowflake professional typically involves working with cloud data platforms, data warehousing, and SQL skills. It offers opportunities in data engineering, analytics, and cloud computing, with demand driven by the growth of data-driven decision making. Certifications and continuous learning can enhance job prospects in this field.

What exactly does Snowflake do?

A Snowflake professional typically works with the Snowflake data platform, which is a cloud-based data warehousing service. They manage data integration, optimize queries, and ensure data security within the platform, often using SQL and cloud infrastructure skills. The role involves supporting data analytics and business intelligence initiatives.

What are the most commonly searched types of Snowflake jobs in Dallas, TX?

The most popular types of Snowflake jobs in Dallas, TX are:

What cities near Dallas, TX are hiring for Snowflake jobs?

Cities near Dallas, TX with the most Snowflake job openings:

Infographic showing various Snowflake job openings in Dallas, TX as of August 2026, with employment types broken down into 52% Full Time, and 48% Contract. Highlights an 78% In-person, and 22% Remote job distribution, with an average salary of $139,107 per year, or $66.9 per hour.

Senior MLOps Engineer - Snowflake

KAPI LLC

Dallas, TX • On-site

$100K - $130K/yr

Contractor

Posted 9 days ago

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Job description

Work Arrangement: Dallas-based / Hybrid


Visa Sponsorship: Not available. Candidates must already be authorized to work in the United States without current or future employer sponsorship.


Job Summary

We are seeking a highly experienced Senior MLOps Engineer with strong hands-on Snowflake experience to support enterprise machine learning platforms and production ML workloads.


The ideal candidate has hands-on experience taking machine learning models from experimentation through production and building the deployment pipelines, monitoring, automation, infrastructure, and governance capabilities required to operate ML solutions reliably at enterprise scale.


This role will work closely with Data Scientists, ML Engineers, Data Engineers, Cloud Engineers, and enterprise platform teams.


Key Responsibilities

  • Design, build, and maintain enterprise-grade MLOps platforms and pipelines.
  • Operationalize machine learning models developed by Data Science teams.
  • Build automated ML workflows covering training, validation, deployment, monitoring, retraining, and retirement.
  • Implement CI/CD pipelines specifically for machine learning workloads.
  • Establish model registry, versioning, lineage, artifact management, and reproducibility.
  • Implement model monitoring, data drift detection, model drift detection, prediction-quality monitoring, and alerting.
  • Integrate ML workloads with Snowflake-based enterprise data environments.
  • Build and optimize Python- and SQL-based data and ML pipelines.
  • Support Snowflake data ingestion, transformation, compute, security, and ML integrations.
  • Containerize ML workloads using Docker and deploy workloads through Kubernetes or comparable orchestration platforms.
  • Implement logging, observability, alerting, and production support processes.
  • Automate deployment and infrastructure provisioning using modern DevOps and Infrastructure-as-Code practices.
  • Support model governance, approval workflows, lineage, auditability, and access controls.
  • Troubleshoot production ML pipelines, model-serving infrastructure, Snowflake integrations, and performance issues.
  • Develop reusable MLOps frameworks, standards, templates, and best practices.


Mandatory Qualifications

Candidates must have hands-on production experience in both MLOps and Snowflake.


MLOps – Required

Strong production experience with:

  • ML model deployment and operationalization
  • Model lifecycle management
  • ML CI/CD
  • Experiment tracking
  • Model registry and versioning
  • Automated model validation
  • Model monitoring
  • Data and model drift detection
  • Retraining pipelines
  • Pipeline orchestration
  • Production troubleshooting


Experience with one or more of the following:

  • ML flow
  • Kubeflow
  • AWS SageMaker
  • Azure Machine Learning
  • Airflow
  • Argo Workflows
  • Prefect
  • Dagster
  • Equivalent enterprise MLOps platforms


Snowflake – Required

Strong hands-on Snowflake experience including:

  • Snowflake architecture
  • Databases, schemas, tables, and views
  • Virtual warehouses
  • Compute management
  • Snowflake security and RBAC
  • Data ingestion and transformation
  • Performance optimization
  • Python integration
  • Snowflake integration with ML pipelines


Experience with the following is strongly preferred:

  • Snowpark
  • Snowpark Python
  • Snowflake ML
  • Snowflake Model Registry
  • Snowflake Feature Store
  • Snowflake Tasks and Streams
  • Dynamic Tables
  • Snowpipe
  • Cortex / Snowflake AI capabilities


Additional Required Technical Skills

  • Strong Python
  • Strong SQL
  • Git
  • REST APIs
  • Linux
  • Shell scripting
  • Docker
  • CI/CD
  • Cloud platforms such as AWS, Azure, or GCP


Preferred Skills

Experience with:

  • Kubernetes
  • Terraform
  • GitHub Actions
  • Jenkins
  • GitLab CI/CD
  • Azure DevOps
  • dbt
  • Spark
  • Kafka
  • Grafana
  • CloudWatch
  • Evidently


Education and Experience

  • Bachelor's or Master's degree in Computer Science, Engineering, Data Science, Machine Learning, or related field.
  • 6+ years of software, cloud, data, or ML engineering experience.
  • 3+ years of hands-on production MLOps experience.
  • Strong hands-on Snowflake experience.
  • Experience deploying ML models into production.
  • Experience implementing ML CI/CD pipelines.
  • Strong Python and SQL skills.
  • Experience with Docker and cloud infrastructure.


Work Authorization

This position does not provide visa sponsorship.

Candidates must be currently authorized to work in the United States without employer sponsorship and must not require sponsorship now or in the future.

Company Description

About KAPI Advisors LLC
KAPI Advisors LLC is a forward-thinking boutique firm at the intersection of AI, Machine Learning, Data Analytics, Generative AI, Mathematical Optimization, and Cloud Platform Engineering. We build highly personalized, cutting-edge solutions tailored to the specific needs of each client — empowering organizations with powerful tools to unlock new business opportunities, operational efficiencies, and platform reliability at scale.
At KAPI Advisors, we are passionate about solving complex, real-world challenges through technology. Our capabilities span intelligent agent-based systems, advanced data analytics, optimization algorithms, and robust cloud infrastructure — all designed to work together seamlessly. Our offerings include Generative AI systems that enable automation and intelligent decision-making, ML models that surface actionable insights, Mathematical Optimization techniques for supply chain management, resource allocation, and logistics, and Site Reliability Engineering practices that ensure the platforms powering these solutions remain performant, resilient, and production-ready.
We believe that great AI and data products are only as strong as the infrastructure beneath them. That's why our SRE and DevOps practice is central to everything we build — from designing observability frameworks and incident response playbooks, to implementing chaos engineering, disaster recovery, and developer productivity tooling that reduces toil and accelerates delivery.
As a boutique firm, we offer the agility and depth that larger organizations simply cannot match. Our team works directly with clients to understand their unique challenges and craft tailored strategies that deliver both immediate impact and long-term resilience. Whether you're looking to scale an AI platform, modernize your cloud infrastructure, or build the reliability engineering culture your engineering team deserves — KAPI Advisors is the partner built for it.