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Junior Full Stack Software Developer Jobs in Garfield Heights, OH

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Junior Full Stack Software Developer information

See Garfield Heights, OH salary details

$22.5K

$83.3K

$128.7K

How much do junior full stack software developer jobs pay per year?

As of Aug 28, 2026, the average yearly pay for junior full stack software developer in Garfield Heights, OH is $83,259.00, according to ZipRecruiter salary data. Most workers in this role earn between $62,700.00 and $81,400.00 per year, depending on experience, location, and employer.

What does a junior full stack software developer do?

A Junior Full Stack Software Developer is responsible for assisting in the design, development, and maintenance of both front-end and back-end components of web applications. They work with various programming languages, frameworks, and databases to build and support software solutions. Typically, they collaborate with senior developers and other team members to learn best practices, resolve bugs, and implement new features. This role is ideal for those who have foundational programming knowledge and are looking to gain hands-on experience across the entire software development stack.

What are the key skills and qualifications needed to thrive as a junior full stack software developer?

To excel as a Junior Full Stack Software Developer, you need a solid understanding of programming languages (such as JavaScript, Python, or Java), front-end and back-end frameworks, and a relevant degree or coding bootcamp experience. Familiarity with tools like Git, databases (e.g., SQL, MongoDB), and cloud platforms, as well as knowledge of agile methodologies, is typically expected. Problem-solving ability, eagerness to learn, and effective teamwork are standout soft skills in this role. These skills and qualities ensure you can build, maintain, and improve applications efficiently while collaborating well within a development team.

What are some typical daily tasks and collaboration expectations for a junior full stack software developer?

As a Junior Full Stack Software Developer, your daily tasks often include writing and testing code for both front-end and back-end components, debugging issues, and participating in code reviews. You’ll regularly collaborate with other developers, designers, and sometimes product managers during stand-up meetings or sprint planning sessions to ensure alignment on project goals. It's common to work under the guidance of senior developers while learning best practices and receiving constructive feedback. This collaborative environment not only helps you grow technically but also improves your communication and teamwork skills.

What is the difference between Junior Full Stack Software Developer vs Junior Front End Developer?

AspectJunior Full Stack Software DeveloperJunior Front End Developer
Required SkillsProficiency in both front-end and back-end technologies (HTML, CSS, JavaScript, server-side languages, databases)Strong skills in HTML, CSS, JavaScript, and front-end frameworks (React, Angular)
Work EnvironmentInvolved in both client-side and server-side development, often in full project cyclesPrimarily focused on user interface and client-side features
Common UsageUsed in roles requiring versatile development across the stackUsed in roles specializing in UI/UX and front-end design

The main difference is that a Junior Full Stack Software Developer works on both front-end and back-end tasks, while a Junior Front End Developer focuses solely on the user interface and client-side development. The full stack role requires broader skills, whereas the front-end role specializes in creating engaging user experiences.

What cities near Garfield Heights, OH are hiring for Junior Full Stack Software Developer jobs?

Cities near Garfield Heights, OH with the most Junior Full Stack Software Developer job openings:

Senior Full Stack Software Engineer

Cleveland, OH • Remote


Life Line Screening
1 - 5K employees

5.3

Company rating: 5.3 out of 10

Based on 14 frontline employees who took The Breakroom Quiz

Respectful managers

Good training

Uninterrupted breaks


Full-time

Posted 9 days ago


Job description

Senior Full Stack Software Engineer
TypeScript · React · Node.js · GraphQL · Event-Driven Architecture · AWS Serverless · AI-Assisted Engineering
Overview
We’re looking for a Senior Full Stack Software Engineer to build and evolve modern, cloud-native applications. You’ll own features end-to-end — from designing performant React/TypeScript user experiences to building event-sourced Node.js services and GraphQL APIs running serverless on AWS. You’ll partner closely with product and design, contribute to system architecture in an event-driven, service-oriented environment, and help strengthen engineering practices around CI/CD, automated testing, observability, and security-by-design.
We use a modern stack and SDLC, this is an AI-native engineering role. Our software development lifecycle is built around agentic AI: coding agents plan, implement, test, and review alongside us across the full pipeline. We expect senior engineers to be fluent operators of these tools — directing agents with precise intent, engineering the context they work from, and rigorously verifying what they produce. The bar for correctness, security, and maintainability does not move because an agent wrote the code; if anything, it rises. You will spend less time typing boilerplate code and more time specifying, orchestrating, reviewing, and owning outcomes.
Key Responsibilities
Product & Platform Delivery
  • Own and deliver end-to-end product features from discovery and design through production support.
  • Build high-quality, accessible (WCAG 2.2 AA), and performant user interfaces using React and TypeScript.
  • Design and implement backend services and APIs using Node.js and GraphQL, with clear contracts and versioning strategies.
  • Develop and operate cloud-native and serverless workloads on AWS, including Lambda, EventBridge, Aurora, SQS/SNS, and DynamoDB.
  • Contribute to service-oriented, event-driven, and event-sourced architectures that scale reliably and evolve safely over time.
  • Commit clean, maintainable, well-documented code and participate in thoughtful code reviews that raise the standard for the whole team.
  • Contribute to architecture decisions and lightweight design records (ADRs, RFCs) that keep intent and trade-offs discoverable — by humans and by agents.
Agentic AI Development & Orchestration
  • Work agent-first by default. Use coding agents (e.g., Claude Code, GitHub Copilot) as the primary implementation surface for well-scoped work, escalating to hands-on coding.
  • Practice spec-driven development. Translate product intent into precise, codebase-grounded specifications, acceptance criteria, and task decompositions that an agent can execute.
  • Engineer the context, not just the prompt. Author and maintain the artifacts agents depend on: repository instruction files, coding standards, architectural conventions, domain glossaries, reusable prompt and skill libraries, and golden reference implementations.
  • Orchestrate multi-agent workflows. Decompose larger initiatives into parallelizable agent tasks, run and supervise concurrent agent sessions, and integrate their output into coherent, reviewable changes.
  • Extend the agent toolchain. Collaborate with teammates to build and maintain MCP servers, tools, and integrations that give agents safe, scoped access to our repositories, ticketing, documentation, observability, and internal services.
  • Build AI-enabled product features where they create real user value — integrating LLM APIs, retrieval pipelines, and agentic workflows with attention to latency, cost, failure modes, and graceful degradation.
  • Evaluate what you ship. For AI-powered features, define and maintain evals, regression suites, and quality benchmarks; monitor for hallucination, prompt injection, and drift.
  • Collaborative & Team-Centric. Share patterns, prompts, workflows, and hard-won failure modes; help colleagues move from AI assistance toward safe, well-governed autonomy.
Quality, Testing & Verification
  • Create and maintain automated tests — unit, integration, contract, and end-to-end — as the primary safety net for both human- and agent-authored change.
  • Design tests that verify behavior and intent rather than restating implementation, so they remain meaningful when agents refactor freely.
  • Champion the definition of done: tests, docs, telemetry, security review, and rollback plan — not just a green build.
Delivery, CI/CD & Operations
  • Build and improve CI/CD pipelines and release processes that enable fast, safe, repeatable, and reversible deployments.
  • Define infrastructure as code (AWS CDK, Terraform, or CloudFormation) and treat environments as reproducible artifacts.
  • Instrument services with structured logging, metrics and participate in on-call, incident response, and blameless postmortems.
Security, Privacy & Compliance
  • Apply secure coding practices, least-privilege access, and secrets hygiene as part of everyday development.
  • Protect sensitive data by design — encryption in transit and at rest, data minimization, and appropriate retention.
  • Understand and mitigate AI-specific risks such as prompt injection, insecure tool/agent permissions, sensitive data leakage into models, and over-permissioned automation.
Collaboration & Technical Leadership
  • Collaborate closely with product, design, QA, and engineering peers in an Agile environment.
  • Mentor engineers on system design, code quality, and effective, safe AI-assisted workflows.
  • Influence roadmap and technical direction by translating between business outcomes and engineering trade-offs.
Qualifications
  • 5+ years of professional experience building and shipping production web applications.
  • Strong experience with React and modern frontend development practices, TypeScript-first.
  • Strong backend experience with Node.js and event-based service design.
  • Hands-on experience deploying and operating services in AWS environments.
  • Familiarity with event-driven and event-sourced system design.
  • Demonstrated experience with automated testing and CI/CD pipelines.
  • Proficiency with Git-based workflows and collaborative, review-driven development.
  • Practical, day-to-day experience using AI coding assistants or agents in real production work — and a clear point of view on where they help, where they fail, and how you verify their output.
  • Strong problem-solving skills and the ability to work effectively across the full stack.
  • Excellent written and verbal communication and the ability to collaborate cross-functionally.
  • Ownership mindset: you take responsibility for outcomes in production, not just for merged pull requests.
Preferred Qualifications
  • Experience with GraphQL and contract-first API development.
  • Familiarity with Infrastructure as Code (AWS CDK, Terraform, or CloudFormation).
  • Experience with observability tooling and OpenTelemetry-based instrumentation.
  • Database experience with SQL and/or NoSQL systems, including data modeling for event-sourced systems.
  • Experience building software in regulated or security-sensitive environments.
  • Experience orchestrating multiple coding agents, or building internal tooling, MCP servers, or platform capabilities that make agents effective for a whole team.
  • Experience shipping LLM-powered product features, including retrieval, tool use, prompt/version management, and evaluation.
  • Experience defining evals, guardrails, or governance for AI systems (e.g., aligned to the NIST AI Risk Management Framework or OWASP Top 10 for LLM Applications).
  • Experience leading large-scale automated refactoring, migration, or modernization efforts.
  • Contributions to developer experience, internal platforms, or engineering enablement.
How We Work
  • Product-Led Teams with Strategic Focus. Engineers are embedded within cross-functional product teams that work from intentionally prioritized backlogs aligned to business outcomes. We empower engineers to understand the "why" behind the work and actively contribute ideas that shape solutions and product direction.
  • A Culture of Collaboration. Collaboration is central to how we work. Architecture reviews, design discussions, pair programming, mob sessions, and open RFCs are part of our normal rhythm. We share ideas early and often because the strongest solutions emerge through collective thinking and diverse perspectives.
  • Humans own the outcome. Agents draft, propose, and automate. Engineers own architecture, security, business logic, and the decision to ship.
  • Small batches, fast feedback, reversible decisions. We optimize for lead time and change-failure rate, not lines of code.
What Success Looks Like
  • First 30 days: productive in the codebase and our agentic workflow; shipping small, reviewed changes to production with confidence.
  • First 90 days: independently owning features end-to-end; improving at least one shared asset — a test suite, a pipeline stage, an agent context file, a quality gate — that makes the whole team faster.
  • First year: trusted owner of a meaningful part of the system; a visible force multiplier for how the team designs, builds, verifies, and operates software.  

This is a fully remote position. 


 

Life Line Screening is proud to be an equal opportunity employer. Employment decisions are made without regard to race, color, religion, national or ethnic origin, sex, sexual orientation, gender identity or expression, age disability, protected veteran status, or other characteristics protected by law. Life Line Screening will only employ those who are legally authorized to work in the United States for this opening. Any offer of employment is conditional upon the successful completion of a background check and drug screen.

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