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Android/Kotlin Engineer

Synechron

 

NYC, NY, USA

Posted On: 30+ days ago
Experience: 5+ years
Availability: Hybrid
Openings: 1
Category: Android Kotlin Engineer
Tenure: Contract - W2
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Description

  • Experience: 5 years building and shipping Android apps in production; ownership of features end-to-end.
  • Language: Strong Kotlin (incl. coroutines); solid grasp of OOP, SOLID, and pragmatic design patterns.
  • Modern UI: Jetpack Compose (preferred) and/or strong XML UI skills; theming, accessibility, localization, multiple screen sizes.
  • Architecture: Hands-on delivery using MVI (unidirectional data flow): intents/actions ? reducer ? state; clear state modeling; side-effects handled cleanly.
  • Async & state: Coroutines + Flow/State Flow, structured concurrency, cancellation, threading, and backpressure awareness.
  • Dependency Injection: Production experience with DI (commonly Hilt/Dagger); scoping, component design, testability.
  • Android fundamentals: Lifecycle, Navigation, background work (Work Manager), permissions, deep links, notifications.
  • Data layer: Room and Data Store; caching strategies; offline/poor-network handling.
  • Networking: REST integration (e.g., Retrofit/Ok Http—verify org-approved libs), auth/token handling, pagination, retries, robust error handling.
  • Testing & quality: Unit tests for reducers/use-cases, View Model tests, some UI tests; CI-friendly builds; lint/static analysis usage.
  • Debugging & performance: Profiling, crash/ANR triage, memory/leak awareness, performance tuning in Compose.
  • Delivery practices: Git workflow, code reviews, refactoring, clear documentation/ADRs when introducing architectural changes.

 

Good-to-have (modern engineering)

  • Modularization: Multi-module Gradle, build optimization, feature modules.
  • Security basics: Secure storage patterns, certificate pinning concepts, privacy-by-design.
  • Observability: Structured logging, analytics/event schemas, crash reporting best practices.

 

Bonus: AI / ML requirements (nice-to-have)

  • On-device ML: Experience integrating ML Kit or TensorFlow Lite, model constraints (latency, memory, battery), and on-device privacy considerations.
  • LLM features: Building AI-powered UX (summarization, search, assistants) via approved APIs; streaming responses, caching, fallbacks, and guardrails.
  • Prompt + evaluation: Basic prompt design, regression/evaluation mindset (quality metrics, red-teaming, offline test sets).
  • Responsible AI: Understanding of PII handling, data minimization, consent, and secure telemetry for AI features.
  • Proficient in iOS/Android Development as well as multiple design techniques
  • Working proficiency in iOS/Android toolset to design, develop, test, deploy, maintain and improve software
  • Strong understanding of Agile methodologies with ability to work in at least one of the common frameworks
  • Strong understanding of techniques such as Continuous Integration, Continuous Delivery, Test Driven Development, Cloud Development, application resiliency and security
  • Proficiency in one or more general purpose programming languages
  • Working proficiency in a portion of software engineering disciplines and demonstrates understanding of overall software skills including business analysis, development, testing, deployment, maintenance and improvement of Software

Education

Bachelor's degree

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