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  1. Home
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  3. Langfuse MCP
  4. vs Jaeger MCP
Side-by-Side Model Context Protocol Comparison

Langfuse MCP vs Jaeger MCP

In-depth architectural comparison of the Langfuse MCP and Jaeger MCP MCP servers. Compare execution transports, security boundaries, tool capabilities, quality scores, and ready-to-paste client installation snippets for Claude, Cursor, Windsurf, and VS Code.

At a Glance & Executive Verdict

Langfuse MCP
Monitoring · Local stdio
Quality: 68/100 (Great) | Auth: API Key required
Jaeger MCP
Monitoring · Local stdio
Quality: 57/100 (Good) | Auth: other
Verdict Summary: Choose Langfuse MCP if you need specialized Monitoring tools running via a local process. Choose Jaeger MCP if your workspace requires Monitoring integration with local subprocess execution. Both servers can be configured concurrently in your client's mcpServers manifest.

Which MCP Server Should You Choose?

Langfuse MCP logo

Choose Langfuse MCP when:

  • You need dedicated capabilities in the Monitoring domain.
  • You prefer local stdio subprocess transport architecture.
  • Your security boundary fits: API Key required (Free / Open Source).
  • You have access to required keys: LANGFUSE_PUBLIC_KEY, LANGFUSE_SECRET_KEY, LANGFUSE_HOST, LANGFUSE_MCP_READ_ONLY.
  • Primary tools included: list_annotation_queues, create_annotation_queue, get_annotation_queue.
Explore Langfuse MCP Details
Jaeger MCP logo

Choose Jaeger MCP when:

  • You need dedicated capabilities in the Monitoring domain.
  • You prefer local stdio subprocess transport architecture.
  • Your security boundary fits: other (Free / Open Source).
  • You have access to required keys: JAEGER_URL.
  • Primary tools included: .

Feature & Specification Comparison

Specification
Langfuse MCP logo
Langfuse MCP
avivsinai
Monitoring
Jaeger MCP logo
Jaeger MCP
mshegolev
Monitoring
SummaryQuery Langfuse traces, debug exceptions, analyze sessions, and manage prompts. Full observability toolkit for LLM applications.Jaeger distributed tracing MCP. 5 tools: listservices, listoperations, searchtraces, gettrace, getdependencies. Any Jaeger instance (HTTP API v3); PyPI + MCP Registry.
Category & ScopeMonitoring

Tools & Capabilities Breakdown

Langfuse MCP Tools (48)

list_annotation_queues
List annotation queues with pagination.
create_annotation_queue
Create an annotation queue.
get_annotation_queue
Get a single annotation queue by ID.
list_annotation_queue_items
List items in an annotation queue.
get_annotation_queue_item
Get a specific annotation queue item by queue and item ID.
create_annotation_queue_item
Create an annotation queue item.

Ready-to-Paste Client Configurations

Paste either (or both) of these JSON server blocks into your client config file (e.g. claude_desktop_config.json or ~/.cursor/mcp.json).

Langfuse MCP Configuration
mcpServers (Claude Desktop / Cursor)
{
  "mcpServers": {
    "avivsinai-langfuse-mcp": {
      "command": "uvx",
      "args": [
        "langfuse-mcp"
      ],
      "env": {
        "LANGFUSE_PUBLIC_KEY": "YOUR_LANGFUSE_PUBLIC_KEY_HERE",
        "LANGFUSE_SECRET_KEY": "YOUR_LANGFUSE_SECRET_KEY_HERE",
        "LANGFUSE_HOST": "YOUR_LANGFUSE_HOST_HERE",
        "LANGFUSE_MCP_READ_ONLY": "YOUR_LANGFUSE_MCP_READ_ONLY_HERE"
      }
    }
  }
}
Jaeger MCP Configuration
mcpServers (Claude Desktop / Cursor)
{
  "mcpServers": {
    "mshegolev-jaeger-mcp": {
      "command": "uvx",
      "args": [
        "jaeger-mcp"
      ],
      "env": {
        "JAEGER_URL": "YOUR_JAEGER_URL_HERE"
      }
    }
  }
}

Frequently Asked Questions

Langfuse MCP is categorized under Monitoring and uses a local stdio subprocess. In contrast, Jaeger MCP belongs to Monitoring using local stdio subprocess. Select Langfuse MCP when you need capabilities focused on monitoring and Jaeger MCP when you require tools for monitoring.

More alternatives to Langfuse MCPMore alternatives to Jaeger MCPMonitoring category hub

Related MCP Server Comparisons

Popular comparisons with Langfuse MCP

  • Langfuse MCP Java logoLangfuse MCP vs Langfuse MCP Java
  • MCP Server logoLangfuse MCP vs MCP Server
  • Opik MCP logoLangfuse MCP vs Opik MCP
  • Heimdall MCP logoLangfuse MCP vs Heimdall MCP

Popular comparisons with Jaeger MCP

jaeger_list_services, jaeger_list_operations, jaeger_search_traces
Explore Jaeger MCP Details
Monitoring
Quality signal68/100 (Great)57/100 (Good)
Transport ProtocolLocal Subprocess (stdio)Local Subprocess (stdio)
Auth RequirementAPI Key requiredother
Pricing ModelFree / Open SourceFree / Open Source
Required Env Vars
LANGFUSE_PUBLIC_KEYLANGFUSE_SECRET_KEYLANGFUSE_HOSTLANGFUSE_MCP_READ_ONLY
JAEGER_URL
Compatible Clients
Claude DesktopCursorWindsurfClineVS Code
Claude DesktopCursorWindsurfClineVS Code
Install path signaluvx · highuvx · high
Engagement & Health 3 views 0 copies 0 upvotes 113 stars 2 views 0 copies 0 upvotes 2 stars
Verified / OfficialCommunity ListingCommunity Listing
Open full listingView Langfuse MCP ListingView Jaeger MCP Listing
update_annotation_queue_item
Update the status of an annotation queue item.
delete_annotation_queue_item
Delete an annotation queue item.
create_annotation_queue_assignment
Assign a user to an annotation queue.
delete_annotation_queue_assignment
Unassign a user from an annotation queue.
list_datasets
List all datasets in the project with pagination. Returns metadata about datasets including name, description, item count, and timestamps. Args: ctx: Context object containing lifespan context with Langfuse client page: Page number for pagination (starts at 1) limit: Maximum items per page (max 100) Returns: A dictionary containing: - data: List of dataset metadata objects - metadata: Pagination info (page, limit, total)
get_dataset
Get a specific dataset by name. Retrieves dataset details including metadata and item count. Args: ctx: Context object containing lifespan context with Langfuse client name: The name of the dataset to fetch Returns: A dictionary containing dataset details: - id: Unique dataset identifier - name: Dataset name - description: Dataset description - metadata: Custom metadata - items: List of dataset items (if included by the API) - runs: List of dataset runs (if included by the API)
+36 more tools listed on main page

Jaeger MCP Tools (15)

jaeger_list_services
List all services that Jaeger has observed traces for. Wraps ``GET /api/services``. Jaeger returns all services at once — no pagination. Output is capped at 500 services with a truncation hint. Use this first to discover valid service names before calling ``jaeger_list_operations`` or ``jaeger_search_traces``. Examples: - Use when: "What services does Jaeger know about?" → call with no parameters; read the ``services`` list. - Use when: "Is `payment-service` instrumented?" → check if `payment-service` appears in the services list. - Use when: Starting a debugging session — list services first, then pick one for ``jaeger_list_operations`` or ``jaeger_search_traces``. - Don't use when: You already know the service name and want to search its traces (call ``jaeger_search_traces`` directly). - Don't use when: You want the dependency graph between services (call ``jaeger_get_dependencies``). Returns: dict with keys ``services_count`` / ``truncated`` / ``services``.
jaeger_list_operations
List all operation names Jaeger has seen for a given service. Wraps ``GET /api/services/{service}/operations``. Useful for discovering which operation names to pass as filters to ``jaeger_search_traces``. Output is capped at 500 operations. Examples: - Use when: "What HTTP endpoints does `order-service` expose in tracing?" → ``service='order-service'``. - Use when: You want to search for a specific slow operation but need the exact name — list operations first, then pass it to ``jaeger_search_traces``. - Use when: Auditing which gRPC methods a service traces. - Don't use when: You don't have a specific service — start with ``jaeger_list_services`` first. - Don't use when: You want to search traces immediately (skip this step if you already know the operation name). Returns: dict with ``service`` / ``operations_count`` / ``truncated`` / ``operations`` (sorted alphabetically).
jaeger_search_traces
Search Jaeger traces with rich filters. Wraps ``GET /api/traces``. Returns a list of trace summaries — use ``jaeger_get_trace`` to drill into a specific trace for span details. The ``tags`` parameter accepts a JSON string so the LLM can construct arbitrary tag filters. Durations (``min_duration``/``max_duration``) are forwarded as-is to Jaeger (e.g. ``'100ms'``, ``'1.5s'``). Examples: - Use when: "Show me recent 500 errors in `order-service`" → ``service='order-service'``, ``tags='{"http.status_code":"500"}'``. - Use when: "Find slow traces (>1s) for `checkout` endpoint" → ``service='checkout'``, ``operation='POST /checkout'``, ``min_duration='1s'``. - Use when: "Give me the last 5 traces in the last hour" → ``limit=5``, set ``start`` to (now - 3600s) in microseconds. - Don't use when: You already have a traceID and want full details (call ``jaeger_get_trace`` directly — one fewer round trip). - Don't use when: You want service dependency topology (call ``jaeger_get_dependencies``). Returns: dict with ``service`` / ``operation`` / ``returned`` / ``truncated`` / ``traces`` (list of :class:`TraceSummary`).
jaeger_get_trace
Retrieve full trace detail with all spans, service breakdown, and execution tree. Wraps ``GET /api/traces/{traceID}``. Returns every span in the trace, per-service statistics, and a flat execution tree (each node lists its child span IDs) that summarises the call hierarchy. Error spans are identified by ``tags["error"] = "true"``. Examples: - Use when: "Why is trace `abc123...` slow — show me the span breakdown" → ``trace_id='abc123...'``; inspect ``services`` for the heaviest service and ``execution_tree`` for the call hierarchy. - Use when: "Which service caused the error in trace `xyz...`?" → check ``spans`` where ``is_error=true``. - Use when: You found a slow/failed trace in ``jaeger_search_traces`` and need full detail. - Don't use when: You don't have a specific traceID — use ``jaeger_search_traces`` to find one first. - Don't use when: You only want aggregate data across many traces (use ``jaeger_search_traces`` with filters instead). Returns: dict with ``trace_id`` / ``span_count`` / ``service_count`` / ``root_operation`` / ``root_service`` / ``start_time_us`` / ``total_duration_us`` / ``errors_count`` / ``services`` (per-service stats) / ``spans`` (all spans) / ``execution_tree``.
jaeger_get_dependencies
Retrieve the service-to-service call graph from Jaeger. Wraps ``GET /api/dependencies``. Returns directed edges (parent → child) with ``call_count`` — the number of spans where parent called child in the lookback window. Use this to understand service topology, find high fan-out services, or verify that a new service is connected as expected. Examples: - Use when: "What services does `order-service` call?" → check edges where ``parent='order-service'``. - Use when: "Map the full service dependency graph for the last 7 days" → ``lookback_hours=168``. - Use when: "Which services are called most frequently?" → sort edges by ``call_count`` descending. - Don't use when: You want detailed span timings (use ``jaeger_search_traces`` + ``jaeger_get_trace`` instead). - Don't use when: You need real-time data — Jaeger's dependency graph is aggregated and may lag by minutes. Returns: dict with ``end_ts_us`` / ``lookback_hours`` / ``edge_count`` / ``edges`` (list of ``{parent, child, call_count}``).
jaeger_compare_traces
Compare two traces structurally — find added, removed, and changed spans. Fetches both traces from Jaeger and performs a structural diff by matching spans on ``(operationName, serviceName, parentOperation)`` — not span IDs, which differ across traces. Reports duration deltas and tag differences for changed spans. Examples: - Use when: "What changed between a fast and slow request?" → pass the trace IDs of both requests; inspect ``changed_spans`` for duration deltas. - Use when: "Did a deployment add new service calls?" → compare a pre-deploy trace with a post-deploy trace; check ``added_spans`` for new operations. - Use when: "Are these two traces structurally identical?" → if ``added_spans``, ``removed_spans``, and ``changed_spans`` are all empty, the traces have the same structure. - Don't use when: You want aggregate statistics across many traces (use ``jaeger_span_statistics`` instead, once available). - Don't use when: You only have one trace — use ``jaeger_get_trace`` for single-trace inspection. Returns: dict with ``trace_id_a`` / ``trace_id_b`` / ``added_spans`` / ``removed_spans`` / ``changed_spans`` (with duration + tag deltas) / ``unchanged_count``.
jaeger_span_statistics
Compute per-operation latency percentiles and error rates across recent traces. Fetches up to ``limit`` traces for the given service (optionally filtered by operation), then aggregates all spans by operation name. For each operation reports: span count, p50/p95/p99 duration in microseconds, error count, and error rate. Duration values are in microseconds (integer). Error rate is ``error_count / span_count`` (float, 0.0–1.0). Examples: - Use when: "What are the p95 latencies for each endpoint in `order-service`?" → ``service='order-service'``; inspect each operation's ``p95_duration_us``. - Use when: "How often does the `POST /checkout` endpoint error?" → ``service='checkout-svc'``, ``operation='POST /checkout'``; check ``error_rate`` in the stats. - Use when: "Compare latency distributions across operations" → look at p50 vs p99 spread to identify high-variance operations. - Use when: "Get a larger sample for more accurate stats" → ``limit=100`` for higher confidence percentiles. - Don't use when: You want to compare two specific traces (use ``jaeger_compare_traces`` instead). - Don't use when: You want full span detail for a single trace (use ``jaeger_get_trace`` instead). Returns: dict with ``service`` / ``operation`` / ``trace_count`` / ``stats`` (list of per-operation stats with count, p50/p95/p99 duration_us, error_count, error_rate).
jaeger_critical_path
Identify the critical path and top bottlenecks in a trace. Finds the longest-duration span chain (critical path) from root to leaf, and ranks spans by self-time to find actual performance bottlenecks. Examples: - Use when: "Why is this trace so slow?" → call with the slow trace ID; examine the critical_path_duration_us and critical_path_percentage to see how much of the total time is spent on the longest path. - Use when: "Which operations are consuming the most CPU/self-time?" → check the bottlenecks list sorted by self_time_us descending. - Use when: Debugging performance regressions — compare critical path percentages before/after changes. - Don't use when: You want aggregate statistics across many traces (use jaeger_span_statistics for that). - Don't use when: You need to compare two traces structurally (use jaeger_compare_traces for that). Returns: dict with trace metadata, critical path spans, and bottleneck ranking.
jaeger_compare_windows
Compare aggregate trace behavior between two time periods for a service. Fetches traces from both time windows, aggregates span statistics per operation, then compares the aggregate behavior to detect performance changes. Examples: - Use when: "Did our latest deployment affect performance?" → compare pre-deploy and post-deploy time windows for the service. - Use when: "Which operations got slower after the database upgrade?" → check the comparison_p95_us and p95_delta_pct columns for increases. - Use when: "Are we seeing new error patterns?" → look for operations with increased error_rate_delta. - Use when: "Did we add or remove any API endpoints?" → check added_count and removed_count in the summary. - Don't use when: You want to compare two specific traces (use jaeger_compare_traces instead). - Don't use when: You want full span detail for a single trace (use jaeger_get_trace instead). Returns: WindowComparisonOutput with per-operation diffs and summary statistics.
jaeger_detect_anomalies
Detect latency and error-rate anomalies for a service by comparing recent behavior to historical baseline. Fetches traces from a historical baseline window and a recent observation window, computes per-operation statistics for both, then identifies statistically significant deviations that may indicate performance issues or reliability problems. Examples: - Use when: "Are there any new performance issues in `order-service`?" → `service='order-service'` (uses default 60-minute baseline, 5-minute current). - Use when: "Be more sensitive to subtle changes" → set `sensitivity=1.5` (lower threshold). - Use when: "Check for issues over the last 24 hours against previous week" → `baseline_duration_minutes=10080`, `current_duration_minutes=1440`. - Don't use when: You want to compare two specific time periods (use jaeger_compare_windows instead). - Don't use when: You want full span detail for a single trace (use jaeger_get_trace instead). Returns: AnomalyDetectionOutput with flagged operations and severity scores.
jaeger_find_test_traces
Find Jaeger traces matching the supplied tag query. Accepts any tag key-value schema (Allure, pytest, custom) without normalization. When service is omitted, searches all known services concurrently (capped at 20). Results are sorted newest-first.
jaeger_regression_diff
Compare two Jaeger time windows and classify per-operation regressions. Fetches traces from the baseline and comparison windows, then classifies each operation as regressed, recovered, appeared, or removed. Results are sorted by severity score (0-100) descending for easy triage.
+3 more tools listed on main page
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