Customers lose trust when they cannot track a parcel after payment, or when in-app rates differ from actual costs. Without EuroPost integration, these issues are inevitable. We solve them: from obtaining an API key to configuring push notifications. Our expertise — 5+ years in logistics integrations, over 50 successful projects. Contact us — we'll show a prototype on your app and assess the project.
Problems We Solve
Delivery cost calculation. The EuroPost API returns a rate only when weight, dimensions, and shipment type are specified accurately. If data is incorrect, the price can differ by a factor of 2. We automate parameter validation on the app side and add visual feedback for the user.
Parcel tracking from China. EuroPost works closely with AliExpress and Wildberries. Part of the parcel's journey passes through partner systems — the API returns an aggregated status. We map them to clear phrases: 'Accepted for sorting', 'In transit in Belarus', 'Ready for pickup'. We process 40+ statuses, including specifics for international shipments.
Choosing a pickup point on the map. EuroPost's network covers cities in different time zones. The app must correctly display opening hours and service availability. We implement filtering based on local time: if a pickup point is closed, it is not shown.
How Status Mapping Works
Incorrect mapping is a common cause of lost trust. The user sees 'In transit' for a parcel that has already been delivered. We use a mapping matrix with 40+ statuses, including specifics for international shipments. The EuroPost API returns codes that we convert to localized strings with emojis for clarity. Typical savings on developing custom mapping come from using our ready-made module.
According to the documentation, the EuroPost API returns status codes in the format 'CN101'. Our mapping module transforms them: 'CN101' → 'Parcel registered in China', 'BY201' → 'Parcel in Minsk, preparing for delivery'. Over 80 rules covering all possible variants.
Why Choose Webhooks Over Polling?
Webhooks are HTTP requests from the EuroPost server when a status changes. Using them instead of polling reduces server load by 10x and speeds up notifications by 15–30 seconds. We configure an endpoint on your server that receives events and sends pushes via FCM or APNs. On iOS we use UIApplication.registerForRemoteNotifications, on Android — FirebaseMessaging. Webhooks are 10x more efficient in load and 30 seconds faster in latency compared to polling.
| Notification Method |
Latency |
Server Load |
Implementation Complexity |
| Polling (WorkManager) |
15–30 minutes |
High (every 10 min) |
Low |
| Webhooks |
<5 seconds |
Minimal |
Medium (endpoint needed) |
Detailed Status Mapping Example
For a parcel from China, the API may return code 'CN101' — 'Accepted in country of origin'. We transform it to 'Parcel registered in China'. If code is 'BY201' — 'Arrived at sorting center Minsk' → 'Parcel in Minsk, preparing for delivery'. Over 80 mapping rules total.
How We Do It
Recently, we integrated EuroPost for a flower delivery app. The main challenge was synchronizing statuses from China. We wrote a custom mapping module in Swift and Kotlin using async/await and Coroutines. Dimension validation is client-side using the API rate grid. Webhooks were set up in 1 day, testing with simulated shipments took 3 days. The integration was delivered turnkey in 12 days.
What's Included
- Audit of current logistics logic in the app
- Data scheme design and mapping of 40+ statuses
- SDK module development for iOS (Swift) and Android (Kotlin)
- Webhook setup and push notifications via FCM/APNs
- Testing on test and real shipments
- API documentation and operation manual
- 7 days of technical support after launch
Process Workflow
Analytics → Design (data scheme, status mapping) → Implementation (iOS and Android in parallel) → Testing (unit tests, UI tests) → Deployment to App Store and Google Play.
Estimated Timelines
| Integration Level |
Timeline |
What's Included |
| Basic |
5–8 days |
Tracking, pickup points, calculator |
| Full |
2–3 weeks |
+ shipment creation, label printing, webhooks |
Cost is calculated individually, depending on complexity and chosen stack.
Request a consultation on integration — contact us to assess your project. We'll show a real prototype on your app and propose the optimal solution.
How to Start Integrating API into a Mobile App?
The request goes out, the response doesn't come, timeout — 30 seconds. The user stares at the spinner. No network — mobile card in the subway. Or the network is there, but the server returns 200 with an HTML error page instead of JSON — and the app crashes on JSONDecoder.decode(). We see such cases on every second project. So integrating API into a mobile app is not just calling an endpoint, but designing a reliable network layer: error handling, caching, offline mode, certificate pinning. Order an audit of your current network layer — we will evaluate the project in 1 day. Our team guarantees a thorough analysis and provides a detailed roadmap.
Standard libraries like URLSession and OkHttp provide basic HTTP clients, but for production you need retries with exponential backoff, status code validation, typed deserialization, and network state monitoring. Without this, the app loses data and users. We have been doing mobile development for 5 years and implemented more than 30 projects with API integration on iOS, Android, and Flutter — from startups to enterprise solutions.
How to Choose a Protocol for API Integration?
| Protocol |
Response Size |
Parsing Speed |
Caching |
Suitable For |
| REST |
Large (fixed structure) |
Medium |
HTTP cache + local |
CRUD, typical screens |
| GraphQL |
Minimal (only needed fields) |
Medium (normalized cache) |
In-memory cache (Apollo) |
Complex UIs with different queries |
| gRPC |
Minimal (protobuf) |
High |
Stream-level |
High-load, real-time, IoT |
| WebSocket |
— (binary/text) |
— |
Manual |
Chats, quotes, synchronization |
REST remains the standard for most projects. But when a profile screen needs 5 fields out of 40, GraphQL eliminates over-fetching and reduces traffic by 30–60%. gRPC is justified for thousands of requests per minute (trading, IoT) — binary serialization is 3–5 times faster than JSON. WebSocket is the only choice for real-time without polling (messages, notifications).
Practical example: For a fintech app, we replaced REST (40 fields) with GraphQL — response size dropped from 12 KB to 2.5 KB, screen render time decreased by 70%. Traffic savings were significant. Our certified iOS and Android developers have deep experience with all these protocols — you can rely on proven solutions.
How to Ensure Reliable Connection and Offline-First?
Users lose network in the subway, elevator, tunnel. A mobile app must work without internet — at least in read-only mode. We implement the offline-first pattern:
- On screen open, first show data from the local cache (Core Data / Room).
- Simultaneously perform a network request, update UI after response.
- If network is unavailable — show cached data and a 'no connection' label.
- When network is restored, automatically synchronize changes.
For HTTP response caching we use URLCache (iOS) and OkHttp Cache (Android) with Cache-Control support. For structured data — SwiftData / Room. NWPathMonitor / ConnectivityManager.NetworkCallback monitor network state and trigger updates.
REST and Client Library Selection
Alamofire (iOS) — de facto standard for Swift projects. On top of URLSession it adds request chaining, response validation, automatic retry, certificate pinning via ServerTrustManager. AF.request() with .validate() returns an error for any status code outside 200–299. Without .validate(), Alamofire considers 404 and 500 as successful responses. With Swift Concurrency — async version via serializingDecodable.
Retrofit (Android) — annotation-based HTTP client on top of OkHttp. An interface with annotations compiles into implementation. @GET, @POST, @Path, @Query, @Body — declarative API description. OkHttp under the hood: connection pooling, transparent gzip, HTTP/2 multiplex. HttpLoggingInterceptor — logging in debug builds. Authenticator — automatic token refresh on 401.
Ktor (KMM/Flutter) — multiplatform HTTP client. On iOS it works via Darwin engine (URLSession), on Android — via OkHttp. Single code for both platforms with KMM architecture.
GraphQL: When REST Falls Short
REST returns a fixed structure. A profile screen needs name, avatar, email — the server sends 40 fields. Over-fetching. GraphQL solves this: the client requests exactly the needed fields. This is critical for mobile where traffic and parsing time are real constraints. Apollo iOS and Apollo Kotlin generate typed classes from schema: schema.graphql + query files → strict types at compile time. Subscriptions via WebSocket — real-time without polling. Limitation: GraphQL is harder to cache at the HTTP level. Apollo uses a normalized in-memory cache InMemoryNormalizedCache — requests with overlapping data update the cache without duplication.
WebSocket: Real-Time Without Extra Traffic
Polling (setInterval every 5 seconds) — battery and traffic waste. WebSocket is a persistent bidirectional connection. iOS: URLSessionWebSocketTask (native, iOS 13+). Android: OkHttp WebSocket. Mandatory reconnect handling: on onFailure — exponential backoff (1s → 2s → 4s → 8s → max 60s). Socket.IO is an overlay with automatic reconnect, but for new projects native WebSocket is preferable (fewer dependencies).
gRPC: For High-Load Services
gRPC with protobuf — binary serialization: smaller size, faster parsing. grpc-swift for iOS, grpc-kotlin for Android. The protobuf schema compiles to typed classes. Streaming (server-side, client-side, bidirectional) is a native feature. Application threshold: high request frequency (trading, IoT) or critical latency. For regular CRUD, REST is simpler to debug and monitor.
Certificate Pinning and Security
A corporate proxy can intercept HTTPS by substituting the certificate. Certificate pinning prevents this: the app accepts only a specific certificate or public key. Alamofire: ServerTrustManager with PinnedCertificatesTrustEvaluator. OkHttp: CertificatePinner with SHA-256 hash. Apple's App Transport Security documentation recommends pinning certificates for sensitive data. Operational complexity: on certificate rotation, older app versions stop working. Solution — pinning to the CA public key or support multiple pins with a grace period.
What Is Included in the Work
| Stage |
Duration |
Result |
| API and requirements analysis |
1–2 days |
Endpoint specification, protocol selection, caching schema |
| Network layer implementation |
3–5 days |
Client library, error handling, retry, pinning |
| Offline mode and caching |
2–3 days |
Local storage, offline-first pattern |
| Integration and testing |
2–3 days |
Unit tests (URLProtocol/OkHttp MockWebServer), UI tests |
| Deployment and documentation |
1 day |
CI/CD, store access, team README |
We deliver: source code of the network layer, documentation on used libraries, certificate rotation instructions, 2 weeks post-delivery support. Our experience guarantees that the solution will be stable and maintainable.
Timeline and Cost
Implementation of a network layer with REST, retry, caching, and offline mode — 1–2 weeks. Adding GraphQL or WebSocket — another 1–2 weeks. gRPC — 2–3 weeks, including code generation. The cost is calculated individually after analyzing the API and offline behavior requirements. We will evaluate the project in 1 day — contact us for a consultation. Get a reliable API integration with guaranteed quality.