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Senior Python Engineer Jobs in Harrisburg, NC (NOW HIRING)

Genesis10 is currently seeking a Python Developer - Hybrid position with a Global Financial ... Senior level experience (10 Years) Desired skills: * Familiarity with front-end technologies, cloud ...

Python Developer

Charlotte, NC · On-site

$79.20/hr

Genesis10 is currently seeking a Python Developer - Hybrid position with a Major Financial ... a senior-level role * Proficiency in Python and SQL * Experience with C# * Experience with cloud ...

Mid to senior About the role V-Assistant is a conversational AI system running in production on ... Python 3.12, FastAPI, Pydantic v2, SQLAlchemy 2 with Alembic, async psycopg/asyncpg, LangChain and ...

Senior data engineer

Charlotte, NC · On-site

$103K - $140K/yr

CharlotteNC28203 Contract duration: 12 Must Have Skills spark python AWS Detailed We are currently seeking a Senior Data Engineer with handson coding experience and a strong background in Python ...

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Senior Python Engineer information

See Harrisburg, NC salary details

$51.5K

$133K

$182.6K

How much do senior python engineer jobs pay per year?

As of Aug 11, 2026, the average yearly pay for senior python engineer in Harrisburg, NC is $132,976.00, according to ZipRecruiter salary data. Most workers in this role earn between $113,800.00 and $153,100.00 per year, depending on experience, location, and employer.

Are senior Python engineers in demand?

Senior Python engineers are highly in demand due to the language's widespread use in web development, data analysis, machine learning, and automation. Companies seek experienced developers with strong problem-solving skills and knowledge of frameworks like Django or Flask, making this a competitive and growing field.

What are the key skills and qualifications needed to thrive as a senior Python engineer, and why are they important?

To thrive as a Senior Python Engineer, you need expert knowledge of Python programming, software architecture, and experience with web frameworks, supported by a degree in computer science or related field. Familiarity with tools like Django, Flask, REST APIs, Docker, and version control systems such as Git is typically required, along with possible certifications in cloud technologies or Python itself. Strong problem-solving abilities, leadership, and effective communication skills help you lead teams and collaborate across departments. These skills ensure robust, scalable software solutions and foster innovation and efficiency within development projects.

What does a senior Python engineer do?

A Senior Python Engineer is an experienced software developer who specializes in designing, developing, and maintaining applications using the Python programming language. They often take on leadership roles within development teams, contribute to architectural decisions, and mentor junior engineers. Senior Python Engineers work on complex projects, ensure code quality, and help implement best practices to improve efficiency and reliability. Their work may span back-end development, data engineering, automation, and integrating with other technologies.

What are the common challenges senior Python engineers face when leading projects, and how can they effectively address them?

Senior Python Engineers often encounter challenges such as balancing hands-on coding with overseeing project architecture, mentoring junior developers, and ensuring code quality across the team. Effectively addressing these challenges involves strong communication, setting clear coding standards, and fostering a collaborative environment through regular code reviews and knowledge-sharing sessions. Staying updated on best practices and leveraging automation tools for testing and deployment can also help streamline workflows and maintain high-quality deliverables.
What cities near Harrisburg, NC are hiring for Senior Python Engineer jobs? Cities near Harrisburg, NC with the most Senior Python Engineer job openings:
Infographic showing various Senior Python Engineer job openings in Harrisburg, NC as of August 2026, with employment types broken down into 88% Full Time, 7% Part Time, and 5% Contract. Highlights an 86% Physical, 5% Hybrid, and 9% Remote job distribution, with an average salary of $132,976 per year, or $63.9 per hour.

Data Platform Security Engineer - Kubernetes/OpenShift (Python Automation)

1 point system

Charlotte, NC • On-site

Contractor

Re-posted 23 days ago


Job description

Job Description:
Overview:

  • Client is seeking a mid-level to senior engineer to join client’s team on a contract basis to help design, build, and operate a secure, scalable enterprise Data Private Cloud (DPC) platform.
  • This is a hybrid role that blends container-platform development (Kubernetes/OpenShift and data services) with security operations (SecOps) and automation.
  • Candidates will build and enhance platform services and workflows across the SDLC, implement security controls and compliance guardrails, and partner with cross-functional teams to operationalize secure-by-default data services at scale.

Key Responsibilities:
Platform Engineering:

  • Design and build automated platform workflows for provisioning, deployment, and operational support of data services running on OpenShift/Kubernetes.
  • Develop and maintain platform capabilities supporting data ecosystem components such as Spark, Iceberg, Ranger, Sparkflow, Superset, and related services.
  • Contribute to resilient, scalable architecture for containerized workloads and large-scale data processing pipelines.
  • Improve platform reliability through automation, runbooks, SRE practices, and standard operating procedures.

Security Engineering and SecOps Enablement

  • Engineer security automation that enforces controls for data access, encryption, masking, and protection across the data platform.
  • Integrate security into the SDLC by embedding controls into CI/CD pipelines, infrastructure-as-code, and release processes.
  • Partner with security, platform, and DevOps teams to strengthen incident response readiness, operational resilience, and risk reduction.
  • Support security monitoring and compliance by contributing to:
  • Policy management, attestation evidence, and continuous compliance workflows
  • Security-relevant audit logging, alerting, and dashboards

Hands-on Development and Collaboration:

  • Design, implement, test, and document Python-based services and automation for platform operations and compliance workflows.
  • Collaborate closely with architects, DevOps/platform engineers, and data product teams to deliver end-to-end solutions.
  • Participate in technical design reviews, threat modeling discussions, and architecture decisions for secure deployment patterns.

Required Qualifications (5 plus years):
Core Skills:

  • Strong Python development skills for enterprise-scale automation and service development.
  • Solid understanding of security fundamentals (least privilege, defense-in-depth, secure SDLC) and common compliance concepts.
  • Experience building or operating software in containerized environments (Kubernetes or OpenShift/OCP).
  • Practical experience with CI/CD pipelines and integrating security checks/controls into delivery workflows.
  • Strong communication skills and ability to work effectively across engineering and security stakeholders.

Technical Background:

  • Familiarity with data security patterns such as access control, encryption, tokenization/masking, and secrets management.
  • Understanding of DevOps practices: automated testing, release automation, environment promotion strategies, and operational support.
  • Exposure to data platform concepts (data services, governance, metadata, batch/stream processing).

Preferred Qualifications (Nice to Have):

  • Experience with Apache/open-source ecosystem tools such as Ranger, Keycloak, Spark, Iceberg, DataHub.
  • Knowledge of S3-compatible object storage and large-scale distributed data processing patterns.
  • Familiarity with observability tooling (logs/metrics/traces), security telemetry, and operational health dashboards.
  • Experience with incident response, post-incident reviews, and improving operational resilience.
  • Exposure to API design and/or UI development (e.g., React.js) for operational portals or admin tools.

What Success Looks Like:

  • Automated workflows that make data services easy to deploy and operate on OCP/Kubernetes.
  • Security controls that are built-in, not bolted-on—policy enforcement, least privilege, auditability, and compliance automation.
  • Improved reliability and reduced operational overhead through standardization and automation.
  • Strong cross-team alignment between platform engineering, data teams, and security stakeholders.